diff --git a/lib/Core/States/State.h b/lib/Core/States/State.h index 9af86bf..805d93d 100644 --- a/lib/Core/States/State.h +++ b/lib/Core/States/State.h @@ -87,6 +87,15 @@ protected: * @param strategy A pointer to the Strategy_Behavior object. The State takes ownership. */ void addStrategy(const std::string& pointDescription, Strategy_Behavior* strategy); + + /** + * @brief Modify specifyc bits of a Modbus point in this state. + * @param equipment Pointer to the Equipment instance. + * @param pointName The description key of the Modbus point to write to. + * @param bitPosition The position to which the function will write to. + * @param state The new state of the selected bit. + */ + void setBitValue(Equipment* equipment, const std::string& pointName, int bitPosition, bool state); /** * @brief returns a behavior strategy for a specific Modbus point in this state. * @param pointDescription The description of the Modbus point your need to get. @@ -218,4 +227,44 @@ void State::_applyStrategies(Equipment* equipment) { } } + +/** + * @brief Controls a specific bit within an integer Modbus word (like a Holding or Input Register). + * + * This function bypasses the standard float logic to perform direct bit manipulation. + * + * @param equipment Pointer to the Equipment instance. + * @param pointName The description key of the Modbus point to modify. + * @param bitPosition The 0-based index of the bit to set/clear (0-15 for a 16-bit word). + * @param state If true, the bit is set (to 1); if false, the bit is cleared (to 0). + */ +template +void State::setBitValue(Equipment* equipment, const std::string& pointName, int bitPosition, bool state) { + Modbus_Point* point = equipment->getModbus_Point(pointName); + + // Safety check: Ensure the point exists and isn't a decorated multi-word type (Float or Long) + // Note: Standard 16-bit Hreg/Ireg will return PointType::GENERIC. + if (!point || point->getType() != PointType::GENERIC || bitPosition < 0 || bitPosition > 15) { + // You can add an error logging statement here if needed, like Serial.printf(...) + return; + } + + // 1. Get the current integer value directly from the point + int currentValue = point->getValue(); + + // 2. Create the bit mask + // '1 << bitPosition' shifts a 1 to the position we want to affect + int mask = 1 << bitPosition; + + if (state) { + // 3. Set the bit (make it 1): Use the bitwise OR operator + currentValue |= mask; + } else { + // 3. Clear the bit (make it 0): Use the bitwise AND operator with the NOT (inverse) of the mask + currentValue &= ~mask; + } + + // 4. Write the new integer value back + point->setValue(currentValue); +} #endif diff --git a/lib/Core/Strategies/Strategy_SingleValue.cpp b/lib/Core/Strategies/Strategy_SingleValue.cpp index b1402cd..3044c4a 100644 --- a/lib/Core/Strategies/Strategy_SingleValue.cpp +++ b/lib/Core/Strategies/Strategy_SingleValue.cpp @@ -43,7 +43,7 @@ float SingleValueStrategy::execute(float currentValue) { } int noiseInt = rand() % 201; noiseInt -= 100; - float noise = (static_cast(noiseInt) / 100) * _noiseMagnitude; + float noise = (static_cast(noiseInt) / 100.0f) * _noiseMagnitude; Serial.printf("Single value strategy with noise. %f \n", noise); return _setpoint + noise; } \ No newline at end of file diff --git a/platformio.ini b/platformio.ini index 32af992..6806fba 100644 --- a/platformio.ini +++ b/platformio.ini @@ -1,5 +1,4 @@ ; PlatformIO Project Configuration File -; ; Build options: build flags, source filter ; Upload options: custom upload port, speed and extra flags ; Library options: dependencies, extra library storages @@ -10,8 +9,7 @@ [platformio] - -default_envs = CH_York_YVAA_RTU ; Select here the name of the configuration you want to download +default_envs = RPP_Cortex_TCP ; Select here the name of the configuration you want to download [env] upload_port = COM11 @@ -37,6 +35,20 @@ extends = common_env_options build_flags = -D USE_MODBUS_IP ;Importat configuration, this flags is used to configure the program build_src_filter = -<*> + ;Add the specific folder path here ;---------------------------------------------------------------------------------------------------- +[env:CRAH_HTS_PLC_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:CRAH_PETRA_PAHHC_600_C6_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + [env:POD_MBB_Power_Meter_TCP] platform = espressif32 board = dfrobot_firebeetle2_esp32e @@ -199,4 +211,73 @@ build_src_filter = -<*> + platform = espressif32 board = dfrobot_firebeetle2_esp32e extends = common_env_options -build_src_filter = -<*> + \ No newline at end of file +build_src_filter = -<*> + + +[env:PHX3_VFD_ABB_ACH580_RTU] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_src_filter = -<*> + + +[env:PHX3_CRAH_LIEBERT_80_SLAB_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:HUM_DriSteem_RTS_RX36_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:CRAH_UMAS_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:GEN_HSE] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:SEL_2440_MVG] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:MVG_SC_EC_M505_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP, +build_src_filter = -<*> + + +[env:GEN_CAT_GCCP_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP, +build_src_filter = -<*> + + +[env:CDU_CoolIT_Oracle_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + + +[env:RPP_Cortex_TCP] +platform = espressif32 +board = dfrobot_firebeetle2_esp32e +extends = common_env_options +build_flags = -D USE_MODBUS_IP +build_src_filter = -<*> + \ No newline at end of file diff --git a/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/README.md b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/README.md new file mode 100644 index 0000000..355156f --- /dev/null +++ b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/README.md @@ -0,0 +1,33 @@ +# EQUIPMENT_TYPE MANUFACTURER MODEL TCP + +## Brief Introduction +Equipment specifc details that make it different from other devices + +## List of Equipmentt +This cofiguration has been used for these models: +* **Model**: 09-15-22 +* **Model**: 09-15-23 +* **Model**: 09-15-25 + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities. +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) + +--- + +## States and Strategies +Provide a brief description of what variables and strategies were used in this configuraiton + +### Standby State +* **Equipment running**: set to 0 +* **Common Alarm**: set to 0 +* **SAT temperature**: set to 85 + +### Running State +* **Equipment running**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 65 deg setpoint + +### Fail State +* **Commong Alarm**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 105 deg setpointset diff --git a/src/EPMS/MVG/SEL_2440 (MVG)/State_Fail.cpp b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Fail.cpp similarity index 100% rename from src/EPMS/MVG/SEL_2440 (MVG)/State_Fail.cpp rename to src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Fail.cpp diff --git a/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Running.cpp b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Running.cpp new file mode 100644 index 0000000..ce88f62 --- /dev/null +++ b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Running.cpp @@ -0,0 +1,136 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state, such as a PID controller for the 'CW Valve Position' and totalizers + * for the run-hours of each EC fan. + */ +template<> +RunningState::RunningState() { + addStrategy("TT01", new SingleValueStrategy(870.0F, 10.0f, 1000)); + addStrategy("TT02", new SingleValueStrategy(880.0F, 10.0f, 1000)); + addStrategy("TT31", new SingleValueStrategy(670.0F, 10.0f, 1000)); + addStrategy("TT41", new SingleValueStrategy(660.0F, 10.0f, 1000)); + addStrategy("PT01", new SingleValueStrategy(350.0F, 10.0f, 1000)); + addStrategy("PT02", new SingleValueStrategy(380.0F, 10.0f, 1000)); + addStrategy("PT31", new SingleValueStrategy(340.0F, 10.0f, 1000)); + addStrategy("PT41", new SingleValueStrategy(370.0F, 10.0f, 1000)); + addStrategy("PT32", new SingleValueStrategy(380.0F, 10.0f, 1000)); + addStrategy("PT42", new SingleValueStrategy(350.0F, 10.0f, 1000)); + addStrategy("PT21", new SingleValueStrategy(370.0F, 10.0f, 1000)); + addStrategy("PT11", new SingleValueStrategy(390.0F, 10.0f, 1000)); + addStrategy("AirTemp", new SingleValueStrategy(660.0F, 1.0f, 1000)); + addStrategy("DP31", new SingleValueStrategy(150.0F, 10.0f, 1000)); + addStrategy("DP41", new SingleValueStrategy(180.0F, 10.0f, 1000)); + addStrategy("DP", new SingleValueStrategy(160.0F, 10.0f, 1000)); + addStrategy("FL01", new SingleValueStrategy(7420.0F, 10.0f, 1000)); + addStrategy("P31_Speed", new SingleValueStrategy(300.0F, 10.0f, 1000)); + addStrategy("P41_Speed", new SingleValueStrategy(410.0F, 10.0f, 1000)); + addStrategy("F1_Speed", new SingleValueStrategy(180.0F, 10.0f, 1000)); + addStrategy("F2_Speed", new SingleValueStrategy(190.0F, 10.0f, 1000)); + addStrategy("F3_Speed", new SingleValueStrategy(170.0F, 10.0f, 1000)); + addStrategy("F4_Speed", new SingleValueStrategy(200.0F, 10.0f, 1000)); + addStrategy("F5_Speed", new SingleValueStrategy(250.0F, 10.0f, 1000)); + addStrategy("F6_Speed", new SingleValueStrategy(210.0F, 10.0f, 1000)); + addStrategy("F7_Speed", new SingleValueStrategy(200.0F, 10.0f, 1000)); + addStrategy("F8_Speed", new SingleValueStrategy(180.0F, 10.0f, 1000)); + addStrategy("AirTemp", new SingleValueStrategy(680.0f, 100.0f, 5000)); + addStrategy("Group_Flow", new SingleValueStrategy(7510.0F, 10.0f, 1000)); + addStrategy("Group_DP", new SingleValueStrategy(200.0F, 10.0f, 1000)); +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. It reads the "ON/OFF Command By BMS" point. If it's 0, it transitions to StandbyState. + * 2. It reads the "Fault Code" point. If it's non-zero, it transitions to FailState, + * passing the corresponding alarm description. + * + * If no transition occurs, it applies the strategies defined for the running state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Running update function"); + float State_Ctrl = getPointValue(equipment, "Remote_Start"); + if (State_Ctrl == 0){ + return new StandbyState(); + } + + float TT01 = getPointValue(equipment, "TT01"); + float TT02 = getPointValue(equipment, "TT02"); + float TT31 = getPointValue(equipment, "TT31"); + float TT41 = getPointValue(equipment, "TT41"); + float PT01 = getPointValue(equipment, "PT01"); + float PT02 = getPointValue(equipment, "PT02"); + float PT31 = getPointValue(equipment, "PT31"); + float PT41 = getPointValue(equipment, "PT41"); + setPointValue(equipment, "TT01_TT02", (TT01 + TT02)/2.0f); + setPointValue(equipment, "TT31_TT41", (TT31 + TT41)/2.0f); + setPointValue(equipment, "PT01_PT02", (PT01 + PT02)/2.0f); + setPointValue(equipment, "PT31_PT41", (PT31 + PT41)/2.0f); + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the "Run Status" for all EC fans to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); + // You could also update a Modbus register to show the "standby" state + setPointValue(equipment, "Status", 1); +} + +/** + * @brief Logic to execute once when exiting the running state. + * Sets the "Run Status" for all EC fans to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); + +} \ No newline at end of file diff --git a/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Standby.cpp b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Standby.cpp new file mode 100644 index 0000000..c525d95 --- /dev/null +++ b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/State_Standby.cpp @@ -0,0 +1,130 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes strategies + * to bring the system to a safe, idle condition. It sets a stable value for + * the SAT reading and creates ramp strategies to bring the CW valve and all + * EC fan speeds down to zero. + */ +template<> +StandbyState::StandbyState() { + // You can add initialization code here if needed + addStrategy("TT01", new SingleValueStrategy(870.0F, 10.0f, 1000)); + addStrategy("TT02", new SingleValueStrategy(870.0F, 10.0f, 1000)); + addStrategy("TT31", new SingleValueStrategy(870.0F, 10.0f, 1000)); + addStrategy("TT41", new SingleValueStrategy(870.0F, 10.0f, 1000)); + addStrategy("PT01", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT02", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT31", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT41", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT32", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT42", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT21", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("PT11", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("DP31", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("DP41", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("DP", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("FL01", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("AirTemp", new SingleValueStrategy(870.0F, 10.0f, 1000)); + addStrategy("P31_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("P41_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F1_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F2_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F3_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F4_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F5_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F6_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F7_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("F8_Speed", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("Group_Flow", new SingleValueStrategy(1.0F, 1.0f, 1000)); + addStrategy("Group_DP", new SingleValueStrategy(1.0F, 1.0f, 1000)); + + +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method applies the strategies defined for the standby state (e.g., + * ramping values to zero). + * + * @warning This method currently does not check for a command to transition to the + * Running state. This logic needs to be added to allow the unit to start. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + float State_Ctrl = getPointValue(equipment, "Remote_Start"); + if (State_Ctrl == 1){ + return new RunningState(); + } + float TT01 = getPointValue(equipment, "TT01"); + float TT02 = getPointValue(equipment, "TT02"); + float TT31 = getPointValue(equipment, "TT31"); + float TT41 = getPointValue(equipment, "TT41"); + float PT01 = getPointValue(equipment, "PT01"); + float PT02 = getPointValue(equipment, "PT02"); + float PT31 = getPointValue(equipment, "PT31"); + float PT41 = getPointValue(equipment, "PT41"); + setPointValue(equipment, "TT01_TT02", (TT01 + TT02)/2.0f); + setPointValue(equipment, "TT31_TT41", (TT31 + TT41)/2.0f); + setPointValue(equipment, "PT01_PT02", (PT01 + PT02)/2.0f); + setPointValue(equipment, "PT31_PT41", (PT31 + PT41)/2.0f); + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * This method performs cleanup by setting all alarm points and all EC fan + * run status points to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); + setPointValue(equipment, "Status", 0); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} \ No newline at end of file diff --git a/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/config.h b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/config.h new file mode 100644 index 0000000..fbd0547 --- /dev/null +++ b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/config.h @@ -0,0 +1,129 @@ +/** + * @file config.h + * @brief Main configuration file for the CRAH Unit (TCP) emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "Oracle_SA"; /**< @brief The SSID of the WiFi network. */ + const char *password = "Prime!123"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 38, 23); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 38, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + + + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {HR, 0, 0, "Status"}, + {HR, 1, 0, "Group"}, + {HR, 2, 0, "TT01"}, + {HR, 3, 0, "TT02"}, + {HR, 4, 0, "TT31"}, + {HR, 5, 0, "TT41"}, + {HR, 6, 0, "PT01"}, + {HR, 7, 0, "PT02"}, + {HR, 8, 0, "PT31"}, + {HR, 9, 0, "PT41"}, + {HR, 10, 0, "PT32"}, + {HR, 11, 0, "PT42"}, + {HR, 12, 0, "PT21"}, + {HR, 13, 0, "PT11"}, + {HR, 14, 0, "TT01_TT02"}, + {HR, 15, 0, "TT31_TT41"}, + {HR, 16, 0, "PT01_PT02"}, + {HR, 17, 0, "PT31_PT41"}, + {HR, 18, 0, "DP31"}, + {HR, 19, 0, "DP41"}, + {HR, 20, 0, "DP"}, + {HR, 21, 0, "FL01"}, + {HR, 22, 0, "P31_Speed"}, + {HR, 23, 0, "P41_Speed"}, + {HR, 24, 0, "F1_Speed"}, + {HR, 25, 0, "F2_Speed"}, + {HR, 26, 0, "F3_Speed"}, + {HR, 27, 0, "F4_Speed"}, + {HR, 28, 0, "F5_Speed"}, + {HR, 29, 0, "F6_Speed"}, + {HR, 30, 0, "F7_Speed"}, + {HR, 31, 0, "F8_Speed"}, + {HR, 33, 0, "AirTemp"}, + {HR_FLOAT, 40, 0, "Group_Flow"}, + {HR_FLOAT, 42, 0, "Group_DP"}, + {HR, 44, 0, "Version"}, + {HR, 200, 0, "Temp_SP"}, + {HR, 201, 0, "DP_SP"}, + {HR, 202, 0, "Flow_SP"}, + + {COIL, 0, 0, "Alarm"}, + {COIL, 1, 0, "Alarm_Ack"}, + {COIL, 5, 0, "OvrPressure"}, + {COIL, 14, 0, "Ntwk_Fault"}, + {COIL, 15, 0, "Unit_Available"}, + {COIL, 33, 0, "OvrTemp"}, + {COIL, 86, 0, "LD01"}, + {COIL, 87, 0, "StpBtn"}, + {COIL, 131, 0, "Critical_Fault"}, + {COIL, 132, 0, "Power_Fault"}, + {COIL, 133, 0, "PLC_Fault"}, + {COIL, 200, 0, "Remote_Start"}, + +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H diff --git a/src/EPMS/MVG/SEL_2440 (MVG)/main.cpp b/src/BMS/CDU/CDU_CoolIT_Oracle_TCP/main.cpp similarity index 100% rename from src/EPMS/MVG/SEL_2440 (MVG)/main.cpp rename to src/BMS/CDU/CDU_CoolIT_Oracle_TCP/main.cpp diff --git a/src/BMS/CHILLER/CH_York_YVAA_RTU/config.h b/src/BMS/CHILLER/CH_York_YVAA_RTU/config.h index dcf5f0b..cff73a3 100644 --- a/src/BMS/CHILLER/CH_York_YVAA_RTU/config.h +++ b/src/BMS/CHILLER/CH_York_YVAA_RTU/config.h @@ -22,11 +22,11 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ - IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 35); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; #else diff --git a/src/BMS/CRAH/CRAH_HTS_PLC_TCP/README.md b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/README.md new file mode 100644 index 0000000..355156f --- /dev/null +++ b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/README.md @@ -0,0 +1,33 @@ +# EQUIPMENT_TYPE MANUFACTURER MODEL TCP + +## Brief Introduction +Equipment specifc details that make it different from other devices + +## List of Equipmentt +This cofiguration has been used for these models: +* **Model**: 09-15-22 +* **Model**: 09-15-23 +* **Model**: 09-15-25 + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities. +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) + +--- + +## States and Strategies +Provide a brief description of what variables and strategies were used in this configuraiton + +### Standby State +* **Equipment running**: set to 0 +* **Common Alarm**: set to 0 +* **SAT temperature**: set to 85 + +### Running State +* **Equipment running**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 65 deg setpoint + +### Fail State +* **Commong Alarm**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 105 deg setpointset diff --git a/src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Fail.cpp b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Fail.cpp new file mode 100644 index 0000000..8bc0385 --- /dev/null +++ b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Fail.cpp @@ -0,0 +1,81 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor receives a list of alarm descriptions and creates strategies + * to set the corresponding Modbus points to a value of 1, indicating an + * active alarm. It also initializes a PID strategy for the 'CW Valve Position' + * to maintain its state during the fault. + * @param activeAlarms A vector of strings, where each string is the + * description of a Modbus point to be set as an active alarm. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + // Simulate a failure: set common alarm and a specific fan alarm. + + +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * This method checks the "Alarm Reset" Modbus point for a command to + * transition back to Standby, which would typically happen after a fault + * is cleared by a user. If no transition is requested, it continues to apply + * the failure strategies (e.g., keeping alarm bits active). + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the "Alarm Common" point to 1 to indicate a general fault condition. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * Clears the "Alarm Common" point to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/EPMS/MVG/SEL_2440 (MVG)/State_Running.cpp b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Running.cpp similarity index 100% rename from src/EPMS/MVG/SEL_2440 (MVG)/State_Running.cpp rename to src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Running.cpp diff --git a/src/EPMS/MVG/SEL_2440 (MVG)/State_Standby.cpp b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Standby.cpp similarity index 100% rename from src/EPMS/MVG/SEL_2440 (MVG)/State_Standby.cpp rename to src/BMS/CRAH/CRAH_HTS_PLC_TCP/State_Standby.cpp diff --git a/src/BMS/CRAH/CRAH_HTS_PLC_TCP/config.h b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/config.h new file mode 100644 index 0000000..21a339a --- /dev/null +++ b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/config.h @@ -0,0 +1,134 @@ +/** + * @file config.h + * @brief Main configuration file for the CRAH Unit (TCP) emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "QTS_ATL_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "Fayetteville123"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 25, 123); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 25, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + + + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {HR, 49, 0, "Total Ariflow"}, + {HR_FLOAT, 31, 0, "Airflow Effectiveness"}, + {HR_FLOAT, 33, 0, "Return Humidity"}, + {HR_FLOAT, 35, 0, "Return Air Temp"}, + {HR_FLOAT, 37, 0, "Return Dew Point"}, + {HR_FLOAT, 55, 0, "Supply Air Temp"}, + {HR_FLOAT, 27, 0, "Cooling Valve Output"}, + {HR_FLOAT, 29, 0, "Feedback Differential"}, + {HR, 23, 0, "Airflow Used"}, + {HR, 24, 0, "Available Airflow"}, + {HR_FLOAT, 47, 0, "Cooling Capacity"}, + {HR_FLOAT, 45, 0, "Net Sensible Cooling Capacity"}, + {HR_FLOAT, 43, 0, "Fan Time in Hrs"}, + {HR_FLOAT, 51, 0, "Differential Air Temp"}, + {HR_FLOAT, 39, 0, "Fan Speed"}, + {HR, 20, 0, "Heartbeat"}, + + {HR_FLOAT, 41, 0, "Air Temp Setpoint"}, + {HR_FLOAT, 25, 0, "Fan Speed Setpoint"}, + + {HR, 17, 0, "Pump Run Status"}, + {HR, 18, 0, "Pump Health"}, + {HR, 22, 0, "Pump High Float"}, + + {DI, 2, 0, "Common Alarm"}, + {DI, 12, 0, "Smoke Detected"}, + {DI, 13, 0, "Water Under Foot"}, + {DI, 14, 0, "Check Air Filter"}, + {DI, 15, 0, "Fan Issue"}, + {DI, 16, 0, "Alternate Power Source"}, + {DI, 8, 0, "Unit Status"}, + {DI, 7, 0, "Loss of Air Flow"}, + {DI, 8, 0, "Cooling State Input"}, + {DI, 6, 0, "Unit Local"}, + {HR, 4, 0, "Alarm Acknowledged"}, + + //{DI, 2, 0, "Operator Status (Input)"}, + //{COIL, 2, 0, "Operator Status (Output)"}, + //{DI, 2, 0, "Program Status (Input)"}, + //{COIL, 2, 0, "Program Status (Output)"}, + //{DI, 2, 0, "Running Status"}, + //{DI, 2, 0, "Not Ready Status"}, + //{DI, 2, 0, "Start Command (Input)"}, + //{COIL, 2, 0, "Start Command (Output)"}, + //{DI, 2, 0, "Stop Command (Input)"}, + //{COIL, 2, 0, "Stop Command (Output)"}, + //{DI, 2, 0, "Reset (Input)"}, + //{COIL, 2, 0, "Reset (Output)"}, + //{DI, 2, 0, "Start Command (Input)"}, + //{DI, 2, 0, "Stopped Status"}, + //{DI, 2, 0, "Error Status"}, + //{DI, 2, 0, "Not Ready Fail"}, + //{DI, 2, 0, "Starting Status"}, + //{DI, 2, 0, "Stopping Status"}, + // + //{HR_FLOAT, 2, 0, "Air Temp Setpoint (Output)"}, + //{HR_FLOAT, 2, 0, "Fan Speed Setpoint (Output)"}, + + +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H diff --git a/src/BMS/CRAH/CRAH_HTS_PLC_TCP/main.cpp b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/main.cpp new file mode 100644 index 0000000..286a98c --- /dev/null +++ b/src/BMS/CRAH/CRAH_HTS_PLC_TCP/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the CRAH Unit (TCP) Emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of a CRAH unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/State_Running.cpp b/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/State_Running.cpp index b0f5399..6a2c459 100644 --- a/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/State_Running.cpp +++ b/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/State_Running.cpp @@ -38,16 +38,26 @@ */ template<> RunningState::RunningState() { - addStrategy("CW Valve Position", new PIDStrategy("RAT Setpoint", 1000, "RAT")); - addStrategy("Operating Hours EC Fan #1", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #2", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #3", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #4", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #5", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #6", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #7", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #8", new TotalizerStrategy(10000)); - addStrategy("Operating Hours EC Fan #9", new TotalizerStrategy(10000)); + addStrategy("CW Valve Position", new PIDStrategy("SAT Setpoint", 2000, "SAT Reading")); + addStrategy("SAT Reading", new SingleValueStrategy(0.0f, 3.0f, 1000)); + addStrategy("Speed EC Fan #1", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #2", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #3", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #4", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #5", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #6", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #7", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #8", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Speed EC Fan #9", new RampStrategy(0.0f, 500.0f, 1000)); + addStrategy("Operating Hours EC Fan #1", new TotalizerStrategy(1100)); + addStrategy("Operating Hours EC Fan #2", new TotalizerStrategy(1200)); + addStrategy("Operating Hours EC Fan #3", new TotalizerStrategy(1300)); + addStrategy("Operating Hours EC Fan #4", new TotalizerStrategy(1250)); + addStrategy("Operating Hours EC Fan #5", new TotalizerStrategy(1350)); + addStrategy("Operating Hours EC Fan #6", new TotalizerStrategy(1450)); + addStrategy("Operating Hours EC Fan #7", new TotalizerStrategy(1150)); + addStrategy("Operating Hours EC Fan #8", new TotalizerStrategy(1180)); + addStrategy("Operating Hours EC Fan #9", new TotalizerStrategy(1340)); } /** @@ -74,63 +84,36 @@ State* RunningState::update(Equipment* equipment) return new StandbyState(); } - Modbus_Point* faultCode = equipment->getModbus_Point("Fault Code"); - int faultCodeValue = faultCode ? faultCode->getValue() : 0; - switch (faultCodeValue){ - case 1: - return new FailState({"Alarm SAT Sensor Fault"}); - case 2: - return new FailState({"Alarm RAH Sensor Fault"}); - case 3: - return new FailState({"Alarm RAT Sensor Fault"}); - case 4: - return new FailState({"Alarm Filter DP Sensor Fault"}); - case 5: - return new FailState({"Alarm Flooding"}); - case 6: - return new FailState({"Alarm Dirty Filter"}); - case 7: - return new FailState({"Alarm High RAT"}); - case 8: - return new FailState({"Alarm Low RAT"}); - case 9: - return new FailState({"Alarm High SAT"}); - case 10: - return new FailState({"Alarm Low SAT"}); - case 11: - return new FailState({"Alarm High RAH"}); - case 12: - return new FailState({"Alarm Low RAH"}); - case 13: - return new FailState({"Alarm Phase Failure"}); - case 14: - return new FailState({"Alarm Condensate Pump"}); - case 15: - return new FailState({"Alarm Smoke"}); - case 16: - return new FailState({"Alarm Fire"}); - case 17: - return new FailState({"Alarm EC Fan #1"}); - case 18: - return new FailState({"Alarm EC Fan #2"}); - case 19: - return new FailState({"Alarm EC Fan #3"}); - case 20: - return new FailState({"Alarm EC Fan #4"}); - case 21: - return new FailState({"Alarm EC Fan #5"}); - case 22: - return new FailState({"Alarm EC Fan #6"}); - case 23: - return new FailState({"Alarm EC Fan #7"}); - case 24: - return new FailState({"Alarm EC Fan #8"}); - case 25: - return new FailState({"Alarm EC Fan #9"}); - default: - break; - } + float rat = getPointValue(equipment, "RAT"); + setPointValue(equipment, "RAT Reading", rat); + float speed = getPointValue(equipment, "Setting EC Fan Speed"); + Strategy_Behavior* fan1_rs = getStrategy("Speed EC Fan #1"); + static_cast(fan1_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan2_rs = getStrategy("Speed EC Fan #2"); + static_cast(fan2_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan3_rs = getStrategy("Speed EC Fan #3"); + static_cast(fan3_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan4_rs = getStrategy("Speed EC Fan #4"); + static_cast(fan4_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan5_rs = getStrategy("Speed EC Fan #5"); + static_cast(fan5_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan6_rs = getStrategy("Speed EC Fan #6"); + static_cast(fan6_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan7_rs = getStrategy("Speed EC Fan #7"); + static_cast(fan7_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan8_rs = getStrategy("Speed EC Fan #8"); + static_cast(fan8_rs)->setTarget(4200.0f * (speed /100.0f)); + Strategy_Behavior* fan9_rs = getStrategy("Speed EC Fan #9"); + static_cast(fan9_rs)->setTarget(4200.0f * (speed /100.0f)); + + + + float value = getPointValue(equipment, "CW Valve Position"); + Serial.printf("CW Valve Position: %0.2f\n", value); + float sat_setpoint = getPointValue(equipment, "SAT Setpoint"); + Strategy_Behavior* sat_svs = getStrategy("SAT Reading"); + static_cast(sat_svs)->setSetpoint(sat_setpoint); // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; diff --git a/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/config.h b/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/config.h index bd4ad09..d115f19 100644 --- a/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/config.h +++ b/src/BMS/CRAH/CRAH_PETRA_PAHHC_600_C6_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 33, 11); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -60,81 +60,82 @@ */ modbusMap mb_map[] = { - {HR, 15, 0, "State Control"}, //Internal to control from Modscan - {HR, 16, 0, "Fault Code"}, - {HR_FLOAT, 18, 0, "RAT"}, //Internal Fault code from Modscan - {HR_FLOAT, 1, 0, "SAT Setpoint"}, - {HR_FLOAT, 681, 0, "RAT Setpoint"}, - {HR_FLOAT, 111, 0, "High RAT Limit"}, - {HR_FLOAT, 114, 0, "Low RAT Limit"}, - {HR_FLOAT, 118, 0, "High SAT Limit"}, - {HR_FLOAT, 122, 0, "Low SAT Limit"}, - {HR_FLOAT, 685, 0, "High RAH Limit"}, - {HR_FLOAT, 689, 0, "Low RAH Limit"}, - {HR, 5, 0, "Setting the EC Fan Max Speed"}, - {HR, 695, 0, "Setting the EC Fan Min Speed"}, - {HR_FLOAT, 693, 0, "Setting Room Temp"}, - {HR, 691, 0, "Setting EC Fan Speed "}, - {DI, 146, 0, "Alarm SAT Sensor Fault"}, - {DI, 1246, 0, "Alarm RAH Sensor Fault"}, - {DI, 1245, 0, "Alarm RAT Sensor Fault"}, - {DI, 1250, 0, "Alarm Filter DP Sensor Fault"}, - {DI, 51, 0, "Alarm Flooding"}, - {DI, 1096, 0, "Alarm Dirty Filter"}, - {DI, 1367, 0, "Alarm High RAT"}, - {DI, 1099, 0, "Alarm Low RAT"}, - {DI, 118, 0, "Alarm High SAT"}, - {DI, 122, 0, "Alarm Low SAT"}, - {DI, 1307, 0, "Alarm High RAH"}, - {DI, 1308, 0, "Alarm Low RAH"}, - {DI, 1342, 0, "Alarm Common"}, - {DI, 148, 0, "Alarm Phase Failure"}, - {DI, 1370, 0, "Alarm Condensate Pump"}, - {DI, 1368, 0, "Alarm Smoke"}, - {DI, 1369, 0, "Alarm Fire"}, - {DI, 131, 0, "Alarm EC Fan #1"}, - {DI, 132, 0, "Alarm EC Fan #2"}, - {DI, 133, 0, "Alarm EC Fan #3"}, - {DI, 134, 0, "Alarm EC Fan #4"}, - {DI, 135, 0, "Alarm EC Fan #5"}, - {DI, 136, 0, "Alarm EC Fan #6"}, - {DI, 1360, 0, "Alarm EC Fan #7"}, - {DI, 1361, 0, "Alarm EC Fan #8"}, - {DI, 1362, 0, "Alarm EC Fan #9"}, - {DI, 138, 0, "Run Status EC Fan #1"}, - {DI, 139, 0, "Run Status EC Fan #2"}, - {DI, 140, 0, "Run Status EC Fan #3"}, - {DI, 141, 0, "Run Status EC Fan #4"}, - {DI, 142, 0, "Run Status EC Fan #5"}, - {DI, 143, 0, "Run Status EC Fan #6"}, - {DI, 1363, 0, "Run Status EC Fan #7"}, - {DI, 1364, 0, "Run Status EC Fan #8"}, - {DI, 1365, 0, "Run Status EC Fan #9"}, - {IR_FLOAT, 99, 0, "SAT Reading"}, - {IR_FLOAT, 70, 0, "RAH Reading"}, - {IR_FLOAT, 101, 0, "RAT Reading"}, - {IR_FLOAT, 106, 0, "Filter DP Reading"}, - {IR_FLOAT, 496, 0, "CW Valve Position"}, - {IR, 53, 0, "Speed EC Fan #1"}, - {IR, 228, 0, "Speed EC Fan #2"}, - {IR, 229, 0, "Speed EC Fan #3"}, - {IR, 230, 0, "Speed EC Fan #4"}, - {IR, 231, 0, "Speed EC Fan #5"}, - {IR, 232, 0, "Speed EC Fan #6"}, - {IR, 678, 0, "Speed EC Fan #7"}, - {IR, 679, 0, "Speed EC Fan #8"}, - {IR, 680, 0, "Speed EC Fan #9"}, - {IR, 274, 0, "Operating Hours EC Fan #1"}, - {IR, 233, 0, "Operating Hours EC Fan #2"}, - {IR, 244, 0, "Operating Hours EC Fan #3"}, - {IR, 235, 0, "Operating Hours EC Fan #4"}, - {IR, 236, 0, "Operating Hours EC Fan #5"}, - {IR, 245, 0, "Operating Hours EC Fan #6"}, - {IR, 486, 0, "Operating Hours EC Fan #7"}, - {IR, 487, 0, "Operating Hours EC Fan #8"}, - {IR, 488, 0, "Operating Hours EC Fan #9"}, - {COIL, 301, 0, "ON/OFF Command By BMS"}, - {COIL, 302, 0, "Enable Off By Supervisory"}, + {HR, 13, 0, "Delta"}, + {HR, 14, 0, "State Control"}, //Internal to control from Modscan + {HR, 15, 0, "Fault Code"}, + {HR_FLOAT, 17, 0, "RAT"}, //Internal Fault code from Modscan + {HR_FLOAT, 0, 0, "SAT Setpoint"}, + {HR_FLOAT, 680, 0, "RAT Setpoint"}, + {HR_FLOAT, 110, 0, "High RAT Limit"}, + {HR_FLOAT, 113, 0, "Low RAT Limit"}, + {HR_FLOAT, 117, 0, "High SAT Limit"}, + {HR_FLOAT, 121, 0, "Low SAT Limit"}, + {HR_FLOAT, 684, 0, "High RAH Limit"}, + {HR_FLOAT, 688, 0, "Low RAH Limit"}, + {HR, 4, 0, "Setting the EC Fan Max Speed"}, + {HR, 694, 0, "Setting the EC Fan Min Speed"}, + {HR_FLOAT, 692, 0, "Setting Room Temp"}, + {HR_FLOAT, 690, 0, "Setting EC Fan Speed"}, + {DI, 145, 0, "Alarm SAT Sensor Fault"}, + {DI, 1245, 0, "Alarm RAH Sensor Fault"}, + {DI, 1244, 0, "Alarm RAT Sensor Fault"}, + {DI, 1249, 0, "Alarm Filter DP Sensor Fault"}, + {DI, 50, 0, "Alarm Flooding"}, + {DI, 1095, 0, "Alarm Dirty Filter"}, + {DI, 1366, 0, "Alarm High RAT"}, + {DI, 1098, 0, "Alarm Low RAT"}, + {DI, 117, 0, "Alarm High SAT"}, + {DI, 121, 0, "Alarm Low SAT"}, + {DI, 1306, 0, "Alarm High RAH"}, + {DI, 1307, 0, "Alarm Low RAH"}, + {DI, 1341, 0, "Alarm Common"}, + {DI, 147, 0, "Alarm Phase Failure"}, + {DI, 1369, 0, "Alarm Condensate Pump"}, + {DI, 1367, 0, "Alarm Smoke"}, + {DI, 1368, 0, "Alarm Fire"}, + {DI, 130, 0, "Alarm EC Fan #1"}, + {DI, 131, 0, "Alarm EC Fan #2"}, + {DI, 132, 0, "Alarm EC Fan #3"}, + {DI, 133, 0, "Alarm EC Fan #4"}, + {DI, 134, 0, "Alarm EC Fan #5"}, + {DI, 135, 0, "Alarm EC Fan #6"}, + {DI, 1359, 0, "Alarm EC Fan #7"}, + {DI, 1360, 0, "Alarm EC Fan #8"}, + {DI, 1361, 0, "Alarm EC Fan #9"}, + {DI, 137, 0, "Run Status EC Fan #1"}, + {DI, 138, 0, "Run Status EC Fan #2"}, + {DI, 139, 0, "Run Status EC Fan #3"}, + {DI, 140, 0, "Run Status EC Fan #4"}, + {DI, 141, 0, "Run Status EC Fan #5"}, + {DI, 142, 0, "Run Status EC Fan #6"}, + {DI, 1362, 0, "Run Status EC Fan #7"}, + {DI, 1363, 0, "Run Status EC Fan #8"}, + {DI, 1364, 0, "Run Status EC Fan #9"}, + {IR_FLOAT, 98, 0, "SAT Reading"}, + {IR_FLOAT, 69, 0, "RAH Reading"}, + {IR_FLOAT, 100, 0, "RAT Reading"}, + {IR_FLOAT, 105, 0, "Filter DP Reading"}, + {IR_FLOAT, 495, 0, "CW Valve Position"}, + {IR, 52, 0, "Speed EC Fan #1"}, + {IR, 227, 0, "Speed EC Fan #2"}, + {IR, 228, 0, "Speed EC Fan #3"}, + {IR, 229, 0, "Speed EC Fan #4"}, + {IR, 230, 0, "Speed EC Fan #5"}, + {IR, 231, 0, "Speed EC Fan #6"}, + {IR, 677, 0, "Speed EC Fan #7"}, + {IR, 678, 0, "Speed EC Fan #8"}, + {IR, 679, 0, "Speed EC Fan #9"}, + {IR, 273, 0, "Operating Hours EC Fan #1"}, + {IR, 232, 0, "Operating Hours EC Fan #2"}, + {IR, 243, 0, "Operating Hours EC Fan #3"}, + {IR, 234, 0, "Operating Hours EC Fan #4"}, + {IR, 235, 0, "Operating Hours EC Fan #5"}, + {IR, 244, 0, "Operating Hours EC Fan #6"}, + {IR, 485, 0, "Operating Hours EC Fan #7"}, + {IR, 486, 0, "Operating Hours EC Fan #8"}, + {IR, 487, 0, "Operating Hours EC Fan #9"}, + {COIL, 300, 0, "ON/OFF Command By BMS"}, + {COIL, 301, 0, "Enable Off By Supervisory"}, {COIL, 264, 0, "Alarm Reset"} }; //Size of modbus map used in FOR cycles, automatically calculated. diff --git a/src/BMS/CRAH/CRAH_UMAS_TCP/StateUtils.cpp b/src/BMS/CRAH/CRAH_UMAS_TCP/StateUtils.cpp index aaa8bf0..8fdfcc1 100644 --- a/src/BMS/CRAH/CRAH_UMAS_TCP/StateUtils.cpp +++ b/src/BMS/CRAH/CRAH_UMAS_TCP/StateUtils.cpp @@ -75,6 +75,8 @@ void updateAlarms(Equipment* equipment){ "Alarm Condensate Pump ON", "Alarm Fire ON", "Alarm Smoke ON" }; + // NOTE: Per UMAS hardwire signals, alarm opened in case of normal operation, closed in case of alarm condition + // 0: no alarm, 1: alarm int numAlarms = 0; for (int i =0; i< alarmCommands.size() && i < alarmDescriptions.size(); ++i) { Modbus_Point* commandPoint = equipment->getModbus_Point(alarmCommands[i]); @@ -110,7 +112,6 @@ void updateAnalogs(Equipment* equipment){ else if (equipment->getModbus_Point("RA Temp High Alarm ON")->getValue()==1){ equipment->setModbus_Point("Return Air Temp", 104.0f); } - else equipment->setModbus_Point("Return Air Temp", 74.0f); if (equipment->getModbus_Point("RA Humidity Low Alarm ON")->getValue()==1){ equipment->setModbus_Point("Return Air Humidity", 15.0f); @@ -118,5 +119,4 @@ void updateAnalogs(Equipment* equipment){ else if (equipment->getModbus_Point("RA Humidity High Alarm ON")->getValue()==1){ equipment->setModbus_Point("Return Air Humidity", 65.0f); } - else equipment->setModbus_Point("Return Air Humidity", 35.0f); } \ No newline at end of file diff --git a/src/BMS/CRAH/CRAH_UMAS_TCP/State_Fail.cpp b/src/BMS/CRAH/CRAH_UMAS_TCP/State_Fail.cpp index 3136cea..ceeb819 100644 --- a/src/BMS/CRAH/CRAH_UMAS_TCP/State_Fail.cpp +++ b/src/BMS/CRAH/CRAH_UMAS_TCP/State_Fail.cpp @@ -16,6 +16,7 @@ #include "Strategies/Strategy_Ramp.h" #include "Strategies/Strategy_SingleValue.h" #include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Saw.h" #include "States/State_Standby.h" #include "States/State_Running.h" #include "States/State_Fail.h" @@ -39,6 +40,9 @@ FailState::FailState(const std::vector& activeAlarms) { // Fan speed --> 0, Run Status --> 0, Amps --> 0 addStrategy("CW Valve Position", new RampStrategy(0.0f, 5.0f, 1000)); + addStrategy("Supply Air Temp", new SingleValueStrategy(74.0f, 1.0f, 1000)); + addStrategy("Return Air Temp", new SingleValueStrategy(86.0f, 1.0f, 1000)); + addStrategy("Return Air Humidity", new SingleValueStrategy(35.0f, 2.0f, 1000)); addStrategy("Speed Fan 1", new RampStrategy(0.0f, 10.0f, 1000)); addStrategy("Speed Fan 2", new RampStrategy(0.0f, 10.0f, 1000)); addStrategy("Speed Fan 3", new RampStrategy(0.0f, 10.0f, 1000)); @@ -57,7 +61,7 @@ FailState::FailState(const std::vector& activeAlarms) { addStrategy("Amps Fan 7", new RampStrategy(0.0f, 4.5f, 1000)); addStrategy("Amps Fan 8", new RampStrategy(0.0f, 4.5f, 1000)); addStrategy("Amps Fan 9", new RampStrategy(0.0f, 4.5f, 1000)); - + addStrategy("CRAH Heartbeat", new SawStrategy(0.0f, 60.0f, 1.0f, 1000)); } /** @@ -82,8 +86,8 @@ State* FailState::update(Equipment* equipment) { setPointValue(equipment, "ON/OFF Command By BMS", 0); // The only way to exit the Fail State is for Leak Detect Alarm to turn off, then enter Standby State. - bool leakDetected = equipment->getModbus_Point("Alarm Leak Detect"); - if (leakDetected == 0){ + bool leakDetected = getPointValue(equipment, "Alarm Leak Detect"); + if (!leakDetected){ return new StandbyState(); } @@ -93,7 +97,7 @@ State* FailState::update(Equipment* equipment) { /** * @brief Logic to execute once when entering the fail state. - * When entering failed state, turn all fans off (fan status --> 0) and set BMS Command --> 0 + * When entering failed state, turn all fans off (fan status --> 1) and set BMS Command --> 0 * @param equipment Pointer to the Equipment instance. */ template<> @@ -107,7 +111,8 @@ void FailState::enterState(Equipment* equipment) { "Run Status Fan 7", "Run Status Fan 8", "Run Status Fan 9" }; - // Loop through and set all motor statuses to 0 + // Per UMAS submittal Hardwired Run Status signals- 0: fans running, 1: fans stopped + // Loop through and set all motor statuses to 1 for (const auto& desc : motorStatusDescriptions) { Modbus_Point* point = equipment->getModbus_Point(desc); if (point) { diff --git a/src/BMS/CRAH/CRAH_UMAS_TCP/State_Running.cpp b/src/BMS/CRAH/CRAH_UMAS_TCP/State_Running.cpp index 07ab898..a1c8f16 100644 --- a/src/BMS/CRAH/CRAH_UMAS_TCP/State_Running.cpp +++ b/src/BMS/CRAH/CRAH_UMAS_TCP/State_Running.cpp @@ -71,11 +71,13 @@ RunningState::RunningState() { addStrategy("Operating Hours Fan 7", new TotalizerStrategy(1000)); addStrategy("Operating Hours Fan 8", new TotalizerStrategy(1000)); addStrategy("Operating Hours Fan 9", new TotalizerStrategy(1000)); - addStrategy("Supply Air Temp", new SawStrategy(60.0f, 100.0f, 2.0f, 1000)); // Won't initialize at lower bound; always initializes at 0 b/c FLOAT; initialize manually via Modscan - addStrategy("Return Air Temp", new SawStrategy(70.0f, 80.0f, 1.0f, 1000)); + addStrategy("Supply Air Temp", new SawStrategy(60.0f, 100.0f, 2.2f, 1000)); // Won't initialize at lower bound; always initializes at 0 b/c FLOAT; initialize manually via Modscan + addStrategy("Return Air Humidity", new SawStrategy(25.0f, 40.0f, 1.1f, 1000)); + addStrategy("Return Air Temp", new SawStrategy(70.0f, 80.0f, 0.8f, 1000)); addStrategy("Filter Differential Pressure", new SawStrategy(0.0f, 5.0f, 0.2f, 1000)); addStrategy("CW Valve Position", new PIDStrategy("Supply Air Temp Setpoint", 1000, "Supply Air Temp")); // SAT must be greater than SAT Setpoint for this PID to work. - + addStrategy("CRAH Heartbeat", new SawStrategy(0.0f, 60.0f, 1.0f, 1000)); + addStrategy("Fan Speed Feedback", new RampStrategy(0.0f, 1.0f, 200)); } /** @@ -114,7 +116,6 @@ State* RunningState::update(Equipment* equipment) // Check to see if BMS Command set to OFF --> Place unit in Standby // Removed logic of placing unit on standby if BMS_Enable_Source != 2 for ease in testing Mode Feedback. if (On_Off_Command == 0){ - setPointValue(equipment, "ON/OFF Command By BMS", 0); return new StandbyState(); } @@ -142,6 +143,12 @@ State* RunningState::update(Equipment* equipment) } } + // Fan Speed Feedback dynamically ramp to Fan Speed Setpoint sent to Arduino + Strategy_Behavior* speedFeedback = getStrategy("Fan Speed Feedback"); + if (speedFeedback){ + static_cast(speedFeedback)->setTarget(BMS_Speed_Setpoint); + } + // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -164,7 +171,8 @@ void RunningState::enterState(Equipment* equipment) { "Run Status Fan 7", "Run Status Fan 8", "Run Status Fan 9" }; - // Loop through and set all motor statuses to 1 + // Per UMAS submittal Hardwired Run Status signals- 0: fans running, 1: fans stopped + // Loop through and set all motor statuses to 0 for (const auto& desc : motorStatusDescriptions) { Modbus_Point* point = equipment->getModbus_Point(desc); if (point) { @@ -175,7 +183,7 @@ void RunningState::enterState(Equipment* equipment) { /** * @brief Logic to execute once when exiting the running state. - * Sets the "Run Status" for all EC fans to 0 before transitioning to the next state. + * Sets the "Run Status" for all EC fans to 1 (stopped) before transitioning to the next state. * @param equipment Pointer to the Equipment instance. */ template<> @@ -188,7 +196,8 @@ void RunningState::exitState(Equipment* equipment) { "Run Status Fan 7", "Run Status Fan 8", "Run Status Fan 9" }; - // Loop through and set all motor statuses to 0 + // Per UMAS submittal Hardwired Run Status signals- 0: fans running, 1: fans stopped + // Loop through and set all motor statuses to 1 for (const auto& desc : motorStatusDescriptions) { Modbus_Point* point = equipment->getModbus_Point(desc); if (point) { diff --git a/src/BMS/CRAH/CRAH_UMAS_TCP/State_Standby.cpp b/src/BMS/CRAH/CRAH_UMAS_TCP/State_Standby.cpp index 5611468..2b78791 100644 --- a/src/BMS/CRAH/CRAH_UMAS_TCP/State_Standby.cpp +++ b/src/BMS/CRAH/CRAH_UMAS_TCP/State_Standby.cpp @@ -41,8 +41,9 @@ StandbyState::StandbyState() { // You can add initialization code here if needed. // These strategies are applied at the end of the update function. addStrategy("CW Valve Position", new RampStrategy(0.0f, 5.0f, 1000)); - addStrategy("Supply Air Temp", new RampStrategy(74.0f, 1.0f, 1000)); - addStrategy("Return Air Temp", new RampStrategy(86.0f, 1.0f, 1000)); + addStrategy("Supply Air Temp", new SingleValueStrategy(74.0f, 1.0f, 1000)); + addStrategy("Return Air Temp", new SingleValueStrategy(86.0f, 1.0f, 1000)); + addStrategy("Return Air Humidity", new SingleValueStrategy(35.0f, 2.0f, 1000)); addStrategy("Speed Fan 1", new RampStrategy(0.0f, 10.0f, 1000)); addStrategy("Speed Fan 2", new RampStrategy(0.0f, 10.0f, 1000)); addStrategy("Speed Fan 3", new RampStrategy(0.0f, 10.0f, 1000)); @@ -61,7 +62,7 @@ StandbyState::StandbyState() { addStrategy("Amps Fan 7", new RampStrategy(0.0f, 4.5f, 1000)); addStrategy("Amps Fan 8", new RampStrategy(0.0f, 4.5f, 1000)); addStrategy("Amps Fan 9", new RampStrategy(0.0f, 4.5f, 1000)); - + addStrategy("CRAH Heartbeat", new SawStrategy(0.0f, 60.0f, 1.0f, 1000)); } /** @@ -105,7 +106,7 @@ State* StandbyState::update(Equipment* equipment) /** * @brief Logic to execute once when entering the standby state. - * This method performs cleanup by setting all EC fan run status points to 0. + * This method performs cleanup by setting all EC fan run status points to 1 (stopped). * The BMS Command is also set to OFF. * @param equipment Pointer to the Equipment instance. */ @@ -120,7 +121,8 @@ void StandbyState::enterState(Equipment* equipment) { "Run Status Fan 7", "Run Status Fan 8", "Run Status Fan 9" }; - // Loop through and set all motor statuses to 0 + // Per UMAS submittal Hardwired Run Status signals- 0: fans running, 1: fans stopped + // Loop through and set all motor statuses to 1 for (const auto& desc : motorStatusDescriptions) { Modbus_Point* point = equipment->getModbus_Point(desc); if (point) { diff --git a/src/BMS/CRAH/CRAH_UMAS_TCP/config.h b/src/BMS/CRAH/CRAH_UMAS_TCP/config.h index 2bd9273..186fa3b 100644 --- a/src/BMS/CRAH/CRAH_UMAS_TCP/config.h +++ b/src/BMS/CRAH/CRAH_UMAS_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "TP-Link_D91A"; /**< @brief The SSID of the WiFi network. */ - const char *password = "52761492"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 62); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -126,7 +126,7 @@ modbusMap mb_map[] = {IR, 52, 0, "Operating Hours Fan 7"}, {IR, 56, 0, "Operating Hours Fan 8"}, {IR, 60, 0, "Operating Hours Fan 9"}, - {IR, 61, 0, "Control Mode Selected"}, + {IR, 61, 0, "Control Mode Selected"}, // 0: BMS+Speed, 1: BMS+Room Temp, 2: Return Temp {IR_FLOAT, 63, 0, "Amps Fan 1"}, {IR_FLOAT, 65, 0, "Amps Fan 2"}, {IR_FLOAT, 67, 0, "Amps Fan 3"}, @@ -135,14 +135,17 @@ modbusMap mb_map[] = {IR_FLOAT, 73, 0, "Amps Fan 6"}, {IR_FLOAT, 75, 0, "Amps Fan 7"}, {IR_FLOAT, 77, 0, "Amps Fan 8"}, - {IR_FLOAT, 79, 0, "Amps Fan 9"}, + {IR_FLOAT, 79, 0, "Amps Fan 9"}, + {IR_FLOAT, 99, 0, "CRAH Heartbeat"}, {HR_FLOAT, 13, 0, "Fan Speed Setpoint"}, // Receive signal from PLC {HR_FLOAT, 17, 0, "Supply Air Temp Setpoint"}, // Receive signal from PLC {HR_FLOAT, 21, 0, "Fan Min Speed"}, // Send to PLC {HR_FLOAT, 23, 0, "Fan Max Speed"}, // Send to PLC - {HR, 25, 0, "BMS Control Source"}, // Receive signal from PLC - {HR, 26, 0, "BMS Enable Source"}, // Receive signal from PLC + {HR, 25, 0, "BMS Control Source"}, // Receive signal from PLC 0:Speed, 1:Room Temp + {HR, 26, 2, "BMS Enable Source"}, // Receive signal from PLC 0:Keypad, 1:DI, 2:BMS + {HR_FLOAT, 28, 0, "Fan Speed Feedback"}, + {HR_FLOAT, 99, 0, "PLC Heartbeat"}, // This will be seconds from PLC - if doesn't change for 15 seconds set BMS Enable Source to Local (0) }; //Size of modbus map used in FOR cycles, automatically calculated. diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/README.md b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/README.md new file mode 100644 index 0000000..db837dc --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/README.md @@ -0,0 +1,58 @@ +# CRAH Liebert 80 125 SLAB TCP + +## Brief Introduction +This version of the LIEBERT 80 SLAB Electrical Gallery CRAH has different registers from the existing +"CRAH_LIEBERT_80_125_SLAB_TCP" code, hence a new instance was created. The logic in this code is also +unique from the existing LIEBERT_80_125 CRAH unit. +This implementation assumes that on/off control and supply, return air temp setpoints are sent to CRAH unit +from Ignition- there is not an associated PLC program. + +## List of Equipment +This configuration has been used for these models: +* **PHX3 Liebert CW084DC1A1SDM7 SLAB**: 10-27-25 + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities. +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) + +--- + +## States and Strategies +On/Off Control by Coil 25 +Supply Air Temp Setpoint used for PID control of Fluid Control Valves 1&2 +Return Air Temp Setpoint used for PID control of Fan Speed +Unsure of difference between Fluid Control Valves 1 & 2, for this simulation they are assumed to operate the same +We have reached out to vendor for clarification of these two valves. + +### Standby State +* **Unit Status**: set to 2 (standby) +* **Free Cool Status**: set to 1 whenever in Standby Mode - Assuming whenever in Standby Mode will operate in Free Cooling mode +* **Fan Speed**: ramp to 0 +* **Return Humidity**: saw 0 to 80, increments of 5 +* **Return Air Temp**: single value 80 +/- 1 +* **Supply Air Temp**: single value 80 +/- 1 +* **Supply Air Flow**: ramp to 0 +* **Fluid Control Valve Position 1**: ramp to 0 +* **Fluid Control Valve Position 2**: ramp to 0 + +### Running State +* **Unit Status, Supply Fan Status, Cooling Status**: set to 1 +* **Return Humidity**: saw 0 to 80, increments of 5 (same as Standby Mode) +* **Return Air Temp**: saw 62 to 110, increments of 2 +* **Supply Air Temp**: saw 64 to 86, increments of 1 +* **Supply Air Flow**: saw 7 to 10, increments of 1 +* **Fan Speed**: PID control (Return Air Temp Setpoint, Return Air Temp) +* **Fluid Control Valve Position 1**: PID control (Supply Air Temp Setpoint, Supply Air Temp) +* **Fluid Control Valve Position 2**: PID control (Supply Air Temp Setpoint, Supply Air Temp) + +### Fail State +* **Unit Status**: set to 0 (off) +* **Free Cool Status**: set to 0 +* **Fan Speed**: ramp to 0 +* **Return Humidity**: saw 0 to 80, increments of 5 +* **Return Air Temp**: single value 80 +/- 1 +* **Supply Air Temp**: single value 80 +/- 1 +* **Supply Air Flow**: ramp to 0 +* **Fluid Control Valve Position 1**: ramp to 0 +* **Fluid Control Valve Position 2**: ramp to 0 \ No newline at end of file diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/StateUtils.cpp b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/StateUtils.cpp new file mode 100644 index 0000000..7afd68b --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/StateUtils.cpp @@ -0,0 +1,227 @@ +/** + * @file StateUtils.cpp + * @brief Implementation of the StateUtils class. + * @author Robert J. Davis + * @date 2025-10-24 + * + * This file contains implementation of utility functions that are used in multiple States. + */ +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include "StateUtils.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** The purpose of this function is to change the RA Temp, SA Temp, RA Humidity values for the purpose of testing alarms in Ignition. + * There are LOW and HIGH coils, which when activated will set the analog to a low/high range. + * The NORMAL coil will send a one-shot to set the associated analog value back into a normal range. + * If in a RunningState, the analog value will follow it's normal function (typically a sawStrategy). + */ + +void updateAnalogs(Equipment* equipment){ + if (equipment->getModbus_Point("RA Temp NORMAL")->getValue()==1){ + equipment->setModbus_Point("Return Air Temp", 84.0f); + equipment->setModbus_Point("RA Temp Low Alarm ON", 0); + equipment->setModbus_Point("RA Temp High Alarm ON", 0); + equipment->setModbus_Point("RA Temp NORMAL", 0); + } + else if (equipment->getModbus_Point("RA Temp Low Alarm ON")->getValue() ==1){ + equipment->setModbus_Point("Return Air Temp", 60.0f); + equipment->setModbus_Point("RA Temp High Alarm ON", 0); + } + else if (equipment->getModbus_Point("RA Temp High Alarm ON")->getValue()==1){ + equipment->setModbus_Point("Return Air Temp", 110.0f); + equipment->setModbus_Point("RA Temp Low Alarm ON", 0); + } + + if (equipment->getModbus_Point("RA Humidity NORMAL")->getValue()==1){ + equipment->setModbus_Point("Return Humidity", 25.0f); + equipment->setModbus_Point("RA Humidity Low Alarm ON", 0); + equipment->setModbus_Point("RA Humidity High Alarm ON", 0); + equipment->setModbus_Point("RA Humidity NORMAL", 0); + } + else if (equipment->getModbus_Point("RA Humidity Low Alarm ON")->getValue()==1){ + equipment->setModbus_Point("Return Humidity", 5.0f); + equipment->setModbus_Point("RA Humidity High Alarm ON", 0); + } + else if (equipment->getModbus_Point("RA Humidity High Alarm ON")->getValue()==1){ + equipment->setModbus_Point("Return Humidity", 80.0f); + equipment->setModbus_Point("RA Humidity Low Alarm ON", 0); + } + + if (equipment->getModbus_Point("SA Temp NORMAL")->getValue()==1){ + equipment->setModbus_Point("Supply Air Temp", 76.0f); + equipment->setModbus_Point("SA Temp Low Alarm ON", 0); + equipment->setModbus_Point("SA Temp High Alarm ON", 0); + equipment->setModbus_Point("SA Temp NORMAL", 0); + } + else if (equipment->getModbus_Point("SA Temp Low Alarm ON")->getValue() ==1){ + equipment->setModbus_Point("Supply Air Temp", 60.0f); + equipment->setModbus_Point("SA Temp High Alarm ON", 0); + } + else if (equipment->getModbus_Point("SA Temp High Alarm ON")->getValue()==1){ + equipment->setModbus_Point("Supply Air Temp", 90.0f); + equipment->setModbus_Point("SA Temp Low Alarm ON", 0); + } +} + +//This function updates the Alarm bit for the Return Air Temp +void updateReturnAirTempAlarms(Equipment* equipment){ + Modbus_Point* returnAirTemp = equipment -> getModbus_Point("Return Air Temp"); + Modbus_Point* returnTempHighAlarmSP = equipment->getModbus_Point("Return Air Temp Alarm High SP"); + Modbus_Point* returnTempLowAlarmSP = equipment->getModbus_Point("Return Air Temp Alarm Low SP"); + + if (returnAirTemp->getValue() < returnTempLowAlarmSP->getValue()) { + equipment->setModbus_Point("Alarm Low Return Air Temp", 1); + equipment->setModbus_Point("Alarm High Return Air Temp", 0); + } + else if (returnAirTemp->getValue() > returnTempHighAlarmSP->getValue()) { + equipment->setModbus_Point("Alarm High Return Air Temp", 1); + equipment->setModbus_Point("Alarm Low Return Air Temp", 0); + } + else{ + equipment->setModbus_Point("Alarm High Return Air Temp", 0); + equipment->setModbus_Point("Alarm Low Return Air Temp", 0); + } +} + +// This function updates the Alarm bit for the Supply Air Temp +void updateSupplyAirTempAlarms(Equipment* equipment){ + Modbus_Point* supplyAirTemp = equipment -> getModbus_Point("Supply Air Temp"); + Modbus_Point* supplyTempHighAlarmSP = equipment->getModbus_Point("Supply Air Temp Alarm High SP"); + Modbus_Point* supplyTempLowAlarmSP = equipment->getModbus_Point("Supply Air Temp Alarm Low SP"); + + if (supplyAirTemp->getValue() > supplyTempHighAlarmSP->getValue()) { + equipment->setModbus_Point("Alarm High Supply Temp", 1); + equipment->setModbus_Point("Alarm Low Supply Temp", 0); + } + else if (supplyAirTemp->getValue() < supplyTempLowAlarmSP->getValue()) { + equipment->setModbus_Point("Alarm Low Supply Temp", 1); + equipment->setModbus_Point("Alarm High Supply Temp", 0); + } + else{ + equipment->setModbus_Point("Alarm High Supply Temp", 0); + equipment->setModbus_Point("Alarm Low Supply Temp", 0); + } +} + +//This function updates the Alarm bit for the Return Humidity +void updateReturnHumidityAlarms(Equipment* equipment){ + Modbus_Point* returnHumidity = equipment -> getModbus_Point("Return Humidity"); + Modbus_Point* returnHumHighAlarmSP = equipment->getModbus_Point("Return Humidity Alarm High SP"); + Modbus_Point* returnHumLowAlarmSP = equipment->getModbus_Point("Return Humidity Alarm Low SP"); + + if (returnHumidity->getValue() > returnHumHighAlarmSP->getValue()) { + equipment->setModbus_Point("Alarm High Return Humidity", 1); + equipment->setModbus_Point("Alarm Low Return Humidity", 0); + } + else if (returnHumidity->getValue() < returnHumLowAlarmSP->getValue()) { + equipment->setModbus_Point("Alarm Low Return Humidity", 1); + equipment->setModbus_Point("Alarm High Return Humidity", 0); + } + else{ + equipment->setModbus_Point("Alarm High Return Humidity", 0); + equipment->setModbus_Point("Alarm Low Return Humidity", 0); + } +} + + +/** + * @brief This function will update the Alarm status DI bits according to the Alarm Commands from Coils (Modscan) + * It will also update the Common Alarm: if any alarm is active, the Common alarm will also be active. + * + * This is a function used in the update() of the Standby, Running, and Fail States. + * +*/ + +void updateAlarms(Equipment* equipment){ + const std::vector alarmDescriptions = { + "Alarm Fan Overload", "Alarm Loss of Air", "Alarm Compressor 1A Overload", "Alarm Compressor 2A Overload", + "Alarm Smoke Detected", "Alarm Water Detected", "Alarm Standby Unit On", "Alarm CP High Water", + "Alarm Room Sensor Failure", "Alarm Power Loss", "Alarm High Return Air Temp", "Alarm Low Return Air Temp", + "Alarm High Return Humidity", "Alarm Low Return Humidity", "Alarm Clogged Filter", "Alarm Supply Sensor Failure", + "Alarm Unit Network Failure", "Alarm High Supply Temp", "Alarm Low Supply Temp", "Alarm Compressor 1 Short Cycle", + "Alarm Compressor 2 Short Cycle", "Alarm Fan Failure", "Alarm Circuit 1 Low Pressure", "Alarm Circuit 2 Low Pressure", + "Alarm Circuit 1 High Pressure", "Alarm Circuit 2 High Pressure", "Alarm High Return Air Dew Point", + "Alarm Low Return Air Dew Point", "Alarm Compressor 1 Over Temp", "Alarm Compressor 2 Over Temp", + "Common Alarm", "Alarm Pump Failure", "Alarm Comm Loss Condenser 1", "Alarm Comm Loss Condenser 2", + "Alarm Compressor 1B Overload", "Alarm Compressor 2B Overload" + }; + + const std::vector alarmCommands = { + "Alarm Fan Overload ON", "Alarm Loss of Air ON", "Alarm Compressor 1A Overload ON", "Alarm Compressor 2A Overload ON", + "Alarm Smoke Detected ON", "Alarm Water Detected ON", "Alarm Standby Unit On ON", "Alarm High Water ON", + "Alarm Room Sensor Failure ON", "Alarm Power Loss ON", "Alarm High Return Air Temp ON", "Alarm Low Return Air Temp ON", + "Alarm High Return Humidity ON", "Alarm Low Return Humidity ON", "Alarm Clogged Filter ON", "Alarm Supply Sensor Failure ON", + "Alarm Unit Network Failure ON", "Alarm High Supply Temp ON", "Alarm Low Supply Temp ON", "Alarm Compressor 1 Short Cycle ON", + "Alarm Compressor 2 Short Cycle ON", "Alarm Fan Failure ON", "Alarm Circuit 1 Low Pressure ON", "Alarm Circuit 2 Low Pressure ON", + "Alarm Circuit 1 High Pressure ON", "Alarm Circuit 2 High Pressure ON", "Alarm High Return Air Dew Point ON", + "Alarm Low Return Air Dew Point ON", "Alarm Compressor 1 Over Temp ON", "Alarm Compressor 2 Over Temp ON", + "Common Alarm ON", "Alarm Pump Failure ON", "Alarm Comm Loss Condenser 1 ON", "Alarm Comm Loss Condenser 2 ON", + "Alarm Compressor 1B Overload ON", "Alarm Compressor 2B Overload ON" + }; + + const std::vector alarmAnalogs = { + "Alarm High Return Air Temp", "Alarm Low Return Air Temp", "Alarm High Return Humidity", "Alarm Low Return Humidity", + "Alarm High Supply Temp", "Alarm Low Supply Temp" + }; + + // If any Alarm Commands = 1, set the appropriate Alarm = 1 and increment counter for number of active alarms + int numAlarms = 0; + for (int i =0; i< alarmCommands.size() && i < alarmDescriptions.size(); ++i) { + Modbus_Point* commandPoint = equipment->getModbus_Point(alarmCommands[i]); + Modbus_Point* alarmPoint = equipment->getModbus_Point(alarmDescriptions[i]); + if (commandPoint) { + alarmPoint->setValue(commandPoint->getValue()); + if (alarmPoint->getValue() == 1) numAlarms++; + } + } + // If any of the analog alarms = 1, increment counter for number of active alarms + for (int j = 0; j* alarmAnalogPoint = equipment->getModbus_Point(alarmAnalogs[j]); + if (alarmAnalogPoint) { + if (alarmAnalogPoint->getValue() == 1) numAlarms++; + } + } + // If any alarms are active, set the Common Alarm = 1, else Common Alarm = 0. + if (numAlarms >= 1) equipment->setModbus_Point("Common Alarm", 1); + else equipment->setModbus_Point("Common Alarm", 0); +} + +/** + * @brief Updates Dehumidifier Mode + * + * This function will update the Dehumidifier Mode based on Dehumidifier Mode Command (Coil 1) + * received from Modscan. This is for simulation purposes only - in practice, the Chiller + * will transition to Dehumidifier mode based on its own internal logic. + * + * For ease of testing, this is a function used in the update() of the Standby, Running, and Fail States. + * +*/ + +void updateDehumidifier(Equipment* equipment){ + Modbus_Point* DehumidifierCommand = equipment->getModbus_Point("Dehumidifier Mode ON"); + Modbus_Point* DehumidifierStatus = equipment->getModbus_Point("Dehumidifier Status"); + if (DehumidifierCommand->getValue() == 1) { + DehumidifierStatus->setValue(1); + } + else { + DehumidifierStatus->setValue(0); + } +} \ No newline at end of file diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/StateUtils.h b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/StateUtils.h new file mode 100644 index 0000000..861ff6d --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/StateUtils.h @@ -0,0 +1,48 @@ +/** + * @file config.h + * @brief StateUtils class + * @author Robert J Davis + * @date 2025-10-24 + * + * Defines the StateUtils class, which contains utility functions used in multiple States. + */ + +#pragma once + +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include + +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +template +class State; + +void updateAnalogs(Equipment* equipment); +void updateReturnAirTempAlarms(Equipment* equipment); +void updateSupplyAirTempAlarms(Equipment* equipment); +void updateReturnHumidityAlarms(Equipment* equipment); + +/** + * @brief Checks common alarms (non-fail alarms) and updates the Common Alarm Modbus point. + * @param equipment Pointer to the Equipment instance. + * @return void + */ +void updateAlarms(Equipment* equipment); + +/** + * @brief Checks Dehumidifier Mode ON from Modscan (Coil 1) and updates the Dehumidifier Status point. + * @param equipment Pointer to the Equipment instance. + * @return void + */ +void updateDehumidifier(Equipment* equipment); \ No newline at end of file diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Fail.cpp b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Fail.cpp new file mode 100644 index 0000000..68a36fb --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Fail.cpp @@ -0,0 +1,103 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Robert J Davis + * @date 2025-10-24 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "StateUtils.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor ramps Fan Speed, Supply Air Flow, and Fluid Control Valves to 0. + * Return Humidity continues to saw between 0-80 (for sake of Ignition display verification) + * Return and Supply Air Temp is 80 +/- 1 + * + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + addStrategy("Fan Speed", new RampStrategy(0.0f, 10.0f, 1000)); + addStrategy("Return Humidity", new SawStrategy(25.0f, 35.0f, 1.0f, 2000)); + addStrategy("Return Air Temp", new SingleValueStrategy(80.0f, 1.0f, 3000)); + addStrategy("Supply Air Temp", new SingleValueStrategy(76.0f, 1.0f, 3000)); + addStrategy("Supply Air Flow", new RampStrategy(0.0f, 1.0f, 1000)); + addStrategy("Fluid Control Valve Position 1", new RampStrategy(0.0f, 5.0f, 1000)); + addStrategy("Fluid Control Valve Position 2", new RampStrategy(0.0f, 5.0f, 1000)); +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * My programming logic: ensure System On/Off Control is always set to 0. This will ensure + * that after the fault is cleared, the unit will enter StandbyMode and will then be commanded + * by Operator to starts, rather than automatically restarting. This is my assumption for the sake + * of testing, actual implementation may be different. + * + * The only way to exit FailState is for the Smoke Detect and High Water alarms to be cleared. + * Upon exiting FailState, the unit will enter StandbyState. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + setPointValue(equipment, "System On/Off Control", 0); // my programming logic: when clear fault, should be sent to Standby Mode + updateAnalogs(equipment); + updateReturnAirTempAlarms(equipment); + updateSupplyAirTempAlarms(equipment); + updateReturnHumidityAlarms(equipment); + updateAlarms(equipment); + updateDehumidifier(equipment); // Dehumidifier mode can be toggled while in FailState (for ease of Ignition HMI verification) + + bool smokeDetectState = getPointValue(equipment, "Alarm Smoke Detected"); + bool highWaterState = getPointValue(equipment, "Alarm CP High Water"); + if (smokeDetectState == false && highWaterState == false){ + return new StandbyState(); + } + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the Unit Status, Supply Fan Status, Cooling Status, and Free Cooling Status to 0 (off). + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + setPointValue(equipment, "Unit Status", 0); + setPointValue(equipment, "Supply Fan Status", 0); + setPointValue(equipment, "Cooling Status", 0); + setPointValue(equipment, "Free Cooling Status", 0); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Running.cpp b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Running.cpp new file mode 100644 index 0000000..bca9ab6 --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Running.cpp @@ -0,0 +1,140 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Robert J Davis + * @date 2025-10-24 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include "StateUtils.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running state. + * Return Air Temp saws between 66 and 110 to cover both low alarm and high alarm states (72 and 100). + * Supply Air Temp saws between 68 and 86 to cover both low alarm and high alarm states (72 and 78). + * Supply Air Flow saws between 7 to 10 (for Ignition HMI verification, no correlation to expected values). + * Fan Speed adjusts via PID on Return Air Temp Setpoint (note: PID parameters are set in base code, can't be adjusted) + * Fluid Control Valve Positions adjust via PID on Supply Air Temp Setpoint. + * Unsure of the difference between FCV 1 and 2, therefore they just match for the sake of testing. + * + */ +template<> +RunningState::RunningState() { + addStrategy("Return Humidity", new SawStrategy(25.0f, 35.0f, 1.0f, 2000)); + addStrategy("Return Air Temp", new SawStrategy(78.0f, 88.0f, 1.0f, 3000)); + addStrategy("Supply Air Temp", new SawStrategy(73.0f, 77.0f, 1.0f, 5000)); + + addStrategy("Supply Air Flow", new SawStrategy(7.0f, 10.0f, 1.0f, 1000)); + addStrategy("Fan Speed", new PIDStrategy("Return Air Temp Setpoint", 1000, "Return Air Temp")); + addStrategy("Fluid Control Valve Position 1", new PIDStrategy("Supply Air Temp Setpoint", 1000, "Supply Air Temp")); + addStrategy("Fluid Control Valve Position 2", new PIDStrategy("Supply Air Temp Setpoint", 1000, "Supply Air Temp")); +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. Updates Alarm states + * 2. Updates Dehumidifier mode (for ease of Ignition verification) + * If the Smoke Detected or High Water alarms annunciate, send to FailState. + * + * 3. Check if On/Off Command = 0, then send to Standby State. + * + * If no transition occurs, it applies the strategies defined for the running state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + Serial.println("Running update function"); + + updateAnalogs(equipment); + updateReturnAirTempAlarms(equipment); + updateSupplyAirTempAlarms(equipment); + updateReturnHumidityAlarms(equipment); + + updateAlarms(equipment); + updateDehumidifier(equipment); + + bool smokeDetect = getPointValue(equipment, "Alarm Smoke Detected"); + bool highWater = getPointValue(equipment, "Alarm CP High Water"); + std::vector activeFailAlarms; + if (smokeDetect) activeFailAlarms.push_back("Alarm Smoke Detected"); + if (highWater) activeFailAlarms.push_back("Alarm CP High Water"); + if (!activeFailAlarms.empty()){ + return new FailState(activeFailAlarms); + } + + int On_Off_Command = getPointValue(equipment, "System On/Off Control"); + if (On_Off_Command == 0){ + return new StandbyState(); + } + + // Due to 10x scaling of Supply and Return Air Temps, need to adjust for PID strategies + float returnTemp = getPointValue(equipment, "Return Air Temp")/10; + float supplyTemp = getPointValue(equipment, "Supply Air Temp")/10; + float returnTempSP = getPointValue(equipment, "Return Air Temp Setpoint"); + float supplyTempSP = getPointValue(equipment, "Supply Air Temp Setpoint"); + + Strategy_Behavior* FluidControlValve1_strat = getStrategy("Fluid Control Valve Position 1"); + Strategy_Behavior* FluidControlValve2_strat = getStrategy("Fluid Control Valve Position 2"); + Strategy_Behavior* FanSpeed_strat = getStrategy("Fan Speed"); + static_cast(FluidControlValve1_strat)->setLimits(supplyTempSP, supplyTemp); + static_cast(FluidControlValve2_strat)->setLimits(supplyTempSP, supplyTemp); + static_cast(FanSpeed_strat)->setLimits(returnTempSP, returnTemp); + + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the Unit Status, Supply Fan Status, Cooling Status, and Free Cooling Status to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + setPointValue(equipment, "Unit Status", 1); + setPointValue(equipment, "Supply Fan Status", 1); + setPointValue(equipment, "Cooling Status", 1); + setPointValue(equipment, "Free Cooling Status", 0); +} + +/** + * @brief Logic to execute once when exiting the running state. + * All State transitions are executed on enterState function, therefore + * this exitState function is not used. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state +} \ No newline at end of file diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Standby.cpp b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Standby.cpp new file mode 100644 index 0000000..cd0f010 --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/State_Standby.cpp @@ -0,0 +1,122 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Robert J Davis + * @date 2025-10-24 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include "StateUtils.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes strategies + * to bring the system to a safe, idle condition. + * It ramps Fan Speed, Supply Air Flow, and Fluid Control Valves to 0. + * Return Humidity continues to saw between 0-80 (for sake of Ignition display verification) + * Return and Supply Air Temp is 80 +/- 1. + */ +template<> +StandbyState::StandbyState() { + addStrategy("Fan Speed", new RampStrategy(0.0f, 10.0f, 1000)); + addStrategy("Return Humidity", new SawStrategy(25.0f, 35.0f, 1.0f, 2000)); + addStrategy("Return Air Temp", new SingleValueStrategy(80.0f, 1.0f, 3000)); + addStrategy("Supply Air Temp", new SingleValueStrategy(76.0f, 1.0f, 3000)); + addStrategy("Supply Air Flow", new RampStrategy(0.0f, 1.0f, 5000)); + addStrategy("Fluid Control Valve Position 1", new RampStrategy(0.0f, 5.0f, 1000)); + addStrategy("Fluid Control Valve Position 2", new RampStrategy(0.0f, 5.0f, 1000)); +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. Updates Alarm states + * 2. Updates Dehumidifier mode (for ease of Ignition verification) + * If the Smoke Detected or High Water alarms annunciate, send to FailState. + * + * 3. Check if On/Off Command = 1, then send to Running State. + * + * If no transition occurs, it applies the strategies defined for the standby state. + * + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + + updateAnalogs(equipment); + updateReturnAirTempAlarms(equipment); + updateSupplyAirTempAlarms(equipment); + updateReturnHumidityAlarms(equipment); + + updateAlarms(equipment); + updateDehumidifier(equipment); + + bool smokeDetect = getPointValue(equipment, "Alarm Smoke Detected"); + bool highWater = getPointValue(equipment, "Alarm CP High Water"); + std::vector activeFailAlarms; + if (smokeDetect == true) activeFailAlarms.push_back("Alarm Smoke Detected"); + if (highWater == true) activeFailAlarms.push_back("Alarm CP High Water"); + if (!activeFailAlarms.empty()){ + return new FailState(activeFailAlarms); + } + + int On_Off_Command = getPointValue(equipment, "System On/Off Control"); + if (On_Off_Command == 1){ + return new RunningState(); + } + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * Sets the Unit Status = 2 (standby) and Free Cooling Status to 1 (assume whenever in Standby Mode, runs in Free Cooling) + * Supply Fan Status, Cooling Status, Dehumidifier Status, and On/Off Command set to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Set all Unit Status to 2 (standby), ensure On Off Command also set to 0. + setPointValue(equipment, "Unit Status", 2); + setPointValue(equipment, "Supply Fan Status", 0); + setPointValue(equipment, "Cooling Status", 0); + setPointValue(equipment, "Free Cooling Status", 1); + setPointValue(equipment, "Dehumidifier Status", 0); + setPointValue(equipment, "System OnOff Control", 0); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} \ No newline at end of file diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/config.h b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/config.h new file mode 100644 index 0000000..695c5ac --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/config.h @@ -0,0 +1,195 @@ +/** + * @file config.h + * @brief Main configuration file for the Electrical Gallery CRAH Unit (TCP) emulator - Vertiv Liebert 80 Slab TCP PHX3 DC1 + * @author Robert J Davis + * @date 2025-10-24 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 66); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {COIL, 0, 0, "Dehumidifier Mode ON"}, // For Arduino testing only + {COIL, 1, 0, "Alarm Smoke Detected ON"}, // For Arduino testing only - will send to FailState + {COIL, 2, 0, "Alarm High Water ON"}, // For Arduino testing only - will send to FailState + + {COIL, 3, 0, "Alarm Fan Overload ON"}, // For Arduino testing only + {COIL, 4, 0, "Alarm Loss of Air ON"}, // For Arduino testing only + {COIL, 5, 0, "Alarm Compressor 1A Overload ON"}, // For Arduino testing only + {COIL, 6, 0, "Alarm Compressor 2A Overload ON"}, // For Arduino testing only + {COIL, 7, 0, "Alarm Water Detected ON"}, // For Arduino testing only + {COIL, 8, 0, "Alarm Standby Unit On ON"}, // For Arduino testing only + {COIL, 9, 0, "Alarm Room Sensor Failure ON"}, // For Arduino testing only + {COIL, 10, 0, "Alarm Power Loss ON"}, // For Arduino testing only + {COIL, 11, 0, "Alarm Clogged Filter ON"}, // For Arduino testing only + {COIL, 12, 0, "Alarm Supply Sensor Failure ON"}, // For Arduino testing only + {COIL, 13, 0, "Alarm Unit Network Failure ON"}, // For Arduino testing only + {COIL, 14, 0, "Alarm Compressor 1 Short Cycle ON"}, // For Arduino testing only + {COIL, 15, 0, "Alarm Compressor 2 Short Cycle ON"}, // For Arduino testing only + {COIL, 16, 0, "Alarm Fan Failure ON"}, // For Arduino testing only + + {COIL, 17, 0, "Alarm Circuit 1 Low Pressure ON"}, // For Arduino testing only + {COIL, 18, 0, "Alarm Circuit 2 Low Pressure ON"}, // For Arduino testing only + {COIL, 19, 0, "Alarm Circuit 1 High Pressure ON"}, // For Arduino testing only + {COIL, 20, 0, "Alarm Circuit 2 High Pressure ON"}, // For Arduino testing only + {COIL, 21, 0, "Alarm High Return Air Dew Point ON"}, // For Arduino testing only + {COIL, 22, 0, "Alarm Low Return Air Dew Point ON"}, // For Arduino testing only + {COIL, 23, 0, "Common Alarm ON"}, // For Arduino testing only + {COIL, 24, 0, "System On/Off Control"}, + {COIL, 25, 0, "Alarm Compressor 1 Over Temp ON"}, // For Arduino testing only + {COIL, 26, 0, "Alarm Compressor 2 Over Temp ON"}, // For Arduino testing only + {COIL, 27, 0, "Alarm Pump Failure ON"}, // For Arduino testing only + {COIL, 28, 0, "Alarm Comm Loss Condenser 1 ON"}, // For Arduino testing only + {COIL, 29, 0, "Alarm Comm Loss Condenser 2 ON"}, // For Arduino testing only + {COIL, 30, 0, "Alarm Compressor 1B Overload ON"}, // For Arduino testing only + {COIL, 31, 0, "Alarm Compressor 2B Overload ON"}, // For Arduino testing only + + {COIL, 32, 0, "RA Temp Low Alarm ON"}, // For Arduino testing only - sets RA Temp = 60 + {COIL, 33, 0, "RA Temp NORMAL"}, // For Arduino testing only - sets RA Temp = 84 + {COIL, 34, 0, "RA Temp High Alarm ON"}, // For Arduino testing only - sets RA Temp = 110 + + {COIL, 35, 0, "RA Humidity Low Alarm ON"}, // For Arduino testing only - sets RA Humidity = 5 + {COIL, 36, 0, "RA Humidity NORMAL"}, // For Arduino testing only - sets RA Humidity = 25 + {COIL, 37, 0, "RA Humidity High Alarm ON"}, // For Arduino testing only - sets RA Humidity = 80 + + {COIL, 38, 0, "SA Temp Low Alarm ON"}, // For Arduino testing only - sets SA Temp = 60 + {COIL, 39, 0, "SA Temp NORMAL"}, // For Arduino testing only - sets SA Temp = 76 + {COIL, 40, 0, "SA Temp High Alarm ON"}, // For Arduino testing only - sets SA Temp = 90 + + {DI, 24, 0, "Supply Fan Status"}, + {DI, 25, 0, "Cooling Status"}, + {DI, 26, 0, "Free Cooling Status"}, + {DI, 30, 0, "Dehumidifier Status"}, + + {DI, 33, 0, "Alarm Fan Overload"}, + {DI, 34, 0, "Alarm Loss of Air"}, + {DI, 38, 0, "Alarm Compressor 1A Overload"}, + {DI, 42, 0, "Alarm Compressor 2A Overload"}, + {DI, 46, 0, "Alarm Smoke Detected"}, + {DI, 47, 0, "Alarm Water Detected"}, + {DI, 50, 0, "Alarm Standby Unit On"}, + {DI, 51, 0, "Alarm CP High Water"}, + {DI, 52, 0, "Alarm Room Sensor Failure"}, + {DI, 60, 0, "Alarm Power Loss"}, + {DI, 66, 0, "Alarm High Return Air Temp"}, // 100 set in Ignition + {DI, 67, 0, "Alarm Low Return Air Temp"}, // 72 set in Ignition + {DI, 68, 0, "Alarm High Return Humidity"}, // 60 set in Ignition + {DI, 69, 0, "Alarm Low Return Humidity"}, // 20 set in Ignition + {DI, 75, 0, "Alarm Clogged Filter"}, + {DI, 76, 0, "Alarm Supply Sensor Failure"}, + {DI, 91, 0, "Alarm Unit Network Failure"}, + {DI, 208, 0, "Alarm High Supply Temp"}, // 78 set in Ignition + {DI, 209, 0, "Alarm Low Supply Temp"}, // 72 set in Ignition + {DI, 211, 0, "Alarm Compressor 1 Short Cycle"}, + {DI, 212, 0, "Alarm Compressor 2 Short Cycle"}, + {DI, 217, 0, "Alarm Fan Failure"}, + {DI, 239, 0, "Alarm Circuit 1 Low Pressure"}, + {DI, 240, 0, "Alarm Circuit 2 Low Pressure"}, + {DI, 241, 0, "Alarm Circuit 1 High Pressure"}, + {DI, 242, 0, "Alarm Circuit 2 High Pressure"}, + {DI, 344, 0, "Alarm High Return Air Dew Point"}, + {DI, 345, 0, "Alarm Low Return Air Dew Point"}, + {DI, 348, 0, "Alarm Compressor 1 Over Temp"}, + {DI, 349, 0, "Alarm Compressor 2 Over Temp"}, + {DI, 350, 0, "Common Alarm"}, + {DI, 491, 0, "Alarm Pump Failure"}, + {DI, 682, 0, "Alarm Comm Loss Condenser 1"}, + {DI, 683, 0, "Alarm Comm Loss Condenser 2"}, + {DI, 740, 0, "Alarm Compressor 1B Overload"}, + {DI, 741, 0, "Alarm Compressor 2B Overload"}, + + {IR, 99, 0, "Unit Status"}, // 0:off, 1:on, 2:standby + {IR, 102, 0, "Fan Speed"}, + {IR_10x, 129, 250, "Return Humidity"}, + {IR_10x, 742, 840, "Return Air Temp"}, + {IR_10x, 743, 760, "Supply Air Temp"}, + {IR, 1465, 0, "Supply Air Flow"}, + {IR, 2050, 0, "Fluid Control Valve Position 1"}, + {IR, 2051, 0, "Fluid Control Valve Position 2"}, + + {HR_10x, 53, 600, "Return Humidity Alarm High SP"}, + {HR_10x, 54, 200, "Return Humidity Alarm Low SP"}, + {HR, 56, 0, "RAHum Value"}, + {HR, 57, 0, "RAHumHighAlm Value"}, + {HR, 58, 0, "RAHumLowAlm Value"}, + + {HR, 732, 73, "Supply Air Temp Setpoint"}, + + {HR_10x, 738, 1000, "Return Air Temp Alarm High SP"}, + {HR_10x, 739, 720, "Return Air Temp Alarm Low SP"}, + {HR, 741, 0, "RATemp Value"}, + {HR, 742, 0, "RATempHighAlm Value"}, + {HR, 743, 0, "RATempLowAlm Value"}, + + + {HR, 753, 80, "Return Air Temp Setpoint"}, + {HR_10x, 754, 780, "Supply Air Temp Alarm High SP"}, + {HR_10x, 755, 720, "Supply Air Temp Alarm Low SP"}, + {HR, 757, 0, "SATemp Value"}, + {HR, 758, 0, "SATempHighAlm Value"}, + {HR, 759, 0, "SATempLowAlm Value"}, + + +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H diff --git a/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/main.cpp b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/main.cpp new file mode 100644 index 0000000..286a98c --- /dev/null +++ b/src/BMS/CRAH/PHX3_CRAH_LIEBERT_80_SLAB_TCP/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the CRAH Unit (TCP) Emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of a CRAH unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/README.md b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/README.md new file mode 100644 index 0000000..59b4aaa --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/README.md @@ -0,0 +1,51 @@ +# Humidifier Dri-Steem RTS RX-36-1 TCP + +## Brief Introduction +This humidifier receives on/off commands and RH Setpoint from the PLC. +The Space RH register is not used, since there will not be a Space RH sensor wired to the HUM unit. +The RH Setpoint will be determined based on dewpoints in the datahall. See QTS SOO for details. + +## List of Equipment +This configuration has been used for these models: +* **RTS RX-36-1**: 10-28-2025 + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities. +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) + +--- + +## States and Strategies +Provide a brief description of what variables and strategies were used in this configuraiton + +### Standby State +Run Mode = 3 (system standby) +Duct RH = 35 +/- 5 +Fill Valve, Drain Valve = 0 +Steam Demand Mass/Pct = 0 +Steam Output Mass/Pct = 0 +If any alarms active or safety interlock = 0 --> FailState +Checks for Run Mode = 1 AND Air Proving Switch = 1 --> RunningState + +### Running State +Run Mode = 1 (auto) +If any alarms active or safety interlock = 0 --> FailState +If Run Mode = 3 or loss of airflow --> StandbyState +Reads RH Setpoint from PLC +DuctRH will dynamically ramp to RH Setpoint +Fill Valve and Drain Valve switch between 0 and 1 (squareStrategy) +Steam Demand Mass between 3-6 (sawStrategy) +Steam Demand Percent between 50-80% (sawStrategy) +Tank Temp = 80 +/- 3 +Steam Output Mass = 4 +/- 1 +Steam Output Percent = 65 +/- 10 +Water Until ADS/Service will ramp down to 0 (initializes at 1500 and 10000) + +### Fail State +Run Mode = 3 (system standby) +Duct RH = 35 +/- 5 +Fill Valve, Drain Valve = 0 +Steam Demand Mass/Pct = 0 +Steam Output Mass/Pct = 0 +When all alarms are cleared and safety interlock = 1 --> StandbyState \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/StateUtils.cpp b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/StateUtils.cpp new file mode 100644 index 0000000..424f2c1 --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/StateUtils.cpp @@ -0,0 +1,91 @@ +/** + * @file StateUtils.cpp + * @brief Implementation of the StateUtils class. + * @author Robert J. Davis + * @date 2025-10-28 + * + * This file contains implementation of utility functions that are used in multiple States. + */ +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include "StateUtils.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief This function will update the Alarm bits and Safety Interlock state (based on Safety Interlock ON coil - for testing only) + * If the "Clear All Active Alarms" coil is activate, all alarms will be cleared, the Safety Interlock will be set to 1 (ready to operate), + * and the "Manual Clear Alarm Exists" bit will be set to 1. + * The "Alarms Present" (DI 10) will be set to 1 if any alarm is active (or Safety Interlock = 0). This is a register used for + * testing only, and will be used in Standby and Running States to send to FailState. + * + * This function is used in the update() of the Standby, Running, and Fail States. + * +*/ + +void updateAlarms(Equipment* equipment){ + const std::vector alarmDescriptions = { + "Tank Temp Sensor Fail", "Tank Overtemp", "Input RH Out of Range", "Duct RH Out of Range", + "Water Probe Check", "Water Probe Faulty", "Fill Time Excessive", "Refill Time Excessive", + "Tank Not Draining", "Boil Time Excessive" + }; + + // update Safety Interlock state (note: Safety Interlock = 0 means the equipment cannot run- fail safe) + if (equipment->getModbus_Point("Safety Interlock ON")->getValue() == 1){ + equipment->setModbus_Point("Safety Interlock", 0); + } + else equipment->setModbus_Point("Safety Interlock", 1); + + // if "Clear All Active Alarms" bit is 1 --> clear all alarms as well as safety interlock + // if "Clear All Active Alarms" bit is 0 --> if any alarms present set "Alarms Present" register to 1 + if (equipment->getModbus_Point("Clear All Active Alarms")->getValue() == 1){ + for (int i =0; i < alarmDescriptions.size(); ++i) { + equipment->setModbus_Point(alarmDescriptions[i], 0); + } + equipment->setModbus_Point("Safety Interlock ON", 0); + equipment->setModbus_Point("Safety Interlock", 1); + equipment->setModbus_Point("Alarms Present", 0); + equipment->setModbus_Point("Manual Clear Alarm Exists", 1); // the only way to set this back to 0 is manually via Modscan + } + else { + int numAlarms = 0; + for (int i =0; i < alarmDescriptions.size(); ++i) { + Modbus_Point* alarmPoint = equipment->getModbus_Point(alarmDescriptions[i]); + if (alarmPoint->getValue() == 1) numAlarms++; + } + if (equipment->getModbus_Point("Safety Interlock")->getValue() == 0) numAlarms++; + if (numAlarms >= 1) equipment->setModbus_Point("Alarms Present", 1); + else equipment->setModbus_Point("Alarms Present", 0); + } +} + +/** + * @brief This function is used to update the Airflow Proving Switch state (DI 1) + * based on the Safety Interlock ON coil (Coil 2) - this is used for testing purposes only. + * + * This function is used in the update() of the Standby, Running, and Fail States. + * +*/ + +void updateAirflow(Equipment* equipment){ + if (equipment->getModbus_Point("Airflow ON")->getValue() == 1){ + equipment->setModbus_Point("Airflow Proving Switch", 1); + } + else equipment->setModbus_Point("Airflow Proving Switch", 0); +} \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/StateUtils.h b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/StateUtils.h new file mode 100644 index 0000000..e836ae5 --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/StateUtils.h @@ -0,0 +1,43 @@ +/** + * @file config.h + * @brief StateUtils class + * @author Robert J Davis + * @date 2025-10-28 + * + * Defines the StateUtils class, which contains utility functions used in multiple States. + */ + +#pragma once + +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include + +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +template +class State; + +/** + * @brief Updates all alarms, safety interlock, alarms present register. + * @param equipment Pointer to the Equipment instance. + * @return void + */ +void updateAlarms(Equipment* equipment); + +/** + * @brief Updates the Airflow Proving Switch state based on Airflow ON state. + * @param equipment Pointer to the Equipment instance. + * @return void + */ +void updateAirflow(Equipment* equipment); \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Fail.cpp b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Fail.cpp new file mode 100644 index 0000000..d9910a0 --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Fail.cpp @@ -0,0 +1,91 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Robert J Davis + * @date 2025-10-28 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "StateUtils.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor will have the Duct RH fluctuate around 35% (for visualization purposes). + * + * @param activeAlarms A vector of strings, where each string is the + * description of a Modbus point to be set as an active alarm. + * This parameter is not used in this implementation of the Fail State. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + addStrategy("Duct RH", new SingleValueStrategy(35.0f, 5.0f, 1000)); + addStrategy("Tank Temp", new SingleValueStrategy(80.0f, 1.0f, 3000)); +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * Update Alarms states. Stays in FailState until all alarms are cleared --> Standby State. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + updateAlarms(equipment); + + bool alarmsPresent = getPointValue(equipment, "Alarms Present"); + if (!alarmsPresent){ + return new StandbyState(); + } + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the Run Mode to 3 (system standby), and appropriate analogs to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); + // Ensure Run Mode set to 3 (standby) + setPointValue(equipment, "Run Mode", 3); + setPointValue(equipment, "Fill Valve", 0); + setPointValue(equipment, "Drain Valve", 0); + setPointValue(equipment, "Steam Demand Mass", 0); + setPointValue(equipment, "Steam Demand Percent", 0); + setPointValue(equipment, "Steam Output Mass", 0); + setPointValue(equipment, "Steam Output Percent", 0); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Running.cpp b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Running.cpp new file mode 100644 index 0000000..bafc992 --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Running.cpp @@ -0,0 +1,123 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Robert J Davis + * @date 2025-10-28 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include "StateUtils.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state including various analog values. Fill and Drain Valves switch between 0 and 1. + * Water Until ADS/Service will ramp down to 0, initialized at 1500 and 10000, respectively. + */ +template<> +RunningState::RunningState() { + addStrategy("Duct RH", new RampStrategy(40.0f, 1.0f, 2000)); + + addStrategy("Fill Valve", new SquareStrategy(1.0f, 0.0f, 5000)); + addStrategy("Drain Valve", new SquareStrategy(0.0f, 1.0f, 4500)); + + addStrategy("Steam Demand Mass", new SawStrategy(3.0f, 6.0f, 1.0f, 2000)); // these values are semi-random for visualization + addStrategy("Steam Demand Percent", new SawStrategy(50.0f, 80.0f, 5.0f, 1000)); // these values are semi-random for visualization + addStrategy("Tank Temp", new SingleValueStrategy(80.0f, 3.0f, 1000)); // these values are semi-random for visualization + addStrategy("Steam Output Mass", new SingleValueStrategy(4.0f, 1.0f, 1000)); // these values are semi-random for visualization + addStrategy("Steam Output Percent", new SingleValueStrategy(65.0f, 10.0f, 1000)); // these values are semi-random for visualization + addStrategy("Water Until ADS", new RampStrategy(0.0f, 1.0f, 2000)); // ramping down to 0 from 1500 + addStrategy("Water Until Service", new RampStrategy(0.0f, 1.0f, 2000)); // ramping down to 0 from 10000 +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks if there are any active alarms --> FailState. + * Also updates Airflow state according to Airflow ON (Coil 1- for testing use only). + * If no alarms are active, checks for loss of airflow or "Run Mode" = 3 (Modscan, but will be from PLC) + * to transition to the Standby state. If no transition is triggered, it updates the + * rampStrategy targetValue of the Duct RH to dynamically ramp up to the Space RH Setpoint (sent from PLC). + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // Update alarms states and airflow switch state + updateAlarms(equipment); + updateAirflow(equipment); + + // if Alarms are present (as updated in updateAlarms function) --> FailState + bool alarmsPresent = getPointValue(equipment, "Alarms Present"); + if (alarmsPresent){ + std::vector activeAlarmsDesc = {}; // sending a blank string to FailState, b/c that parameter not used in FailState implementation. + return new FailState(activeAlarmsDesc); + } + + // Check for Run Mode and Airflow. If Run Mode = 3 OR Airflow stopped --> StandbyState + int runMode_Command = getPointValue(equipment, "Run Mode"); // Set by PLC + int airflow = getPointValue(equipment, "Airflow Proving Switch"); + if (runMode_Command == 3 || airflow == 0) { + return new StandbyState(); + } + + // Set the Duct RH ramp target value equal to the Space RH Setpoint + float Space_RH_Setpoint = getPointValue(equipment, "Space RH Setpoint"); + float ductRH = getPointValue(equipment, "Duct RH"); + Strategy_Behavior* DuctRH_strat = getStrategy("Duct RH"); + if (DuctRH_strat){ + static_cast(DuctRH_strat)->setTarget(Space_RH_Setpoint); + } + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * + * Note: do not need to set Run Mode = 1 (auto) since that is required to + * send the unit to Run Mode in the first place. Run Mode will already = 1. + * + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); +} + +/** + * @brief Logic to execute once when exiting the running state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); +} \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Standby.cpp b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Standby.cpp new file mode 100644 index 0000000..d47cd2d --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/State_Standby.cpp @@ -0,0 +1,110 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Robert J Davis + * @date 2025-10-28 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include "StateUtils.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor will have + * Duct RH fluctuate around 35% for visualization purposes only. + * + */ +template<> +StandbyState::StandbyState() { + addStrategy("Duct RH", new SingleValueStrategy(35.0f, 5.0f, 1000)); + addStrategy("Tank Temp", new SingleValueStrategy(80.0f, 1.0f, 3000)); +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. Updates Alarm states + * 2. Updates Airflow Switch state (based on Airflow ON command - used just for simulation purposes) + * If any Alarms are active or Safety Interlock = 0, send to FailState. + * + * 3. Check if Run Mode = 1 and Airflow Switch = 1, then send to Running State. + * + * If no transition occurs, it applies the strategies defined for the standby state. + * + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + + updateAlarms(equipment); + updateAirflow(equipment); + + // if Alarms are present (as updated in updateAlarms function) --> FailState + bool alarmsPresent = getPointValue(equipment, "Alarms Present"); + if (alarmsPresent){ + std::vector activeAlarmsDesc = {}; // sending a blank string to FailState, b/c that parameter not used in FailState implementation. + return new FailState(activeAlarmsDesc); + } + + // Check for Run Mode and Airflow Proving Switch. If Run Mode = 1 and there is Airflow --> RunningState + int runMode_Command = getPointValue(equipment, "Run Mode"); // Set by PLC + int airflow = getPointValue(equipment, "Airflow Proving Switch"); + if (airflow == 1 && runMode_Command == 1) { + return new RunningState(); + } + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + Serial.println("Enter Standby State..."); + // Set Run Mode to 3 (standby), just in case entered Standby on loss of airflow + setPointValue(equipment, "Run Mode", 3); + setPointValue(equipment, "Fill Valve", 0); + setPointValue(equipment, "Drain Valve", 0); + setPointValue(equipment, "Steam Demand Mass", 0); + setPointValue(equipment, "Steam Demand Percent", 0); + setPointValue(equipment, "Steam Output Mass", 0); + setPointValue(equipment, "Steam Output Percent", 0); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/config.h b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/config.h new file mode 100644 index 0000000..b78c910 --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/config.h @@ -0,0 +1,108 @@ +/** + * @file config.h + * @brief Main configuration file for the DriSteem Humidifier (TCP) emulator. + * @author Robert J Davis + * @date 2025-10-27 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 68); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {COIL, 0, 0, "Airflow ON"}, // Used for Modscan testing only to set Airflow Proving Switch + {COIL, 1, 0, "Safety Interlock ON"}, // Used for Modscan testing only to trip Safety Interlock + {COIL, 2, 0, "Manual Clear Alarm Exists"}, + {COIL, 3, 0, "Clear All Active Alarms"}, // OCmd_Reset + {COIL, 4, 0, "Tank Temp Sensor Fail"}, + {COIL, 5, 0, "Tank Overtemp"}, + {COIL, 6, 0, "Input RH Out of Range"}, + {COIL, 7, 0, "Duct RH Out of Range"}, + {COIL, 9, 0, "Water Probe Check"}, + {COIL, 10, 0, "Water Probe Faulty"}, + {COIL, 11, 0, "Fill Time Excessive"}, + {COIL, 12, 0, "Refill Time Excessive"}, + {COIL, 13, 0, "Tank Not Draining"}, + {COIL, 14, 0, "Boil Time Excessive"}, + + {DI, 0, 0, "Airflow Proving Switch"}, // 0:open, 1:closed + {DI, 2, 1, "Safety Interlock"}, // 0:open, 1:closed + {DI, 7, 0, "Fill Valve"}, // 0:closed, 1:open + {DI, 8, 0, "Drain Valve"}, // 0:not draining, 1:draining + {DI, 9, 0, "Alarms Present"}, // Used for Modscan testing only - not part of vendor Modbus table + + {IR, 0, 0, "Space RH"}, // Relative_Humidity --> NOT USED, sensor not connected to HUM + {IR, 2, 0, "Duct RH"}, // OSet_CV + {IR, 3, 0, "Steam Demand Mass"}, + {IR, 4, 0, "Steam Demand Percent"}, + {IR, 6, 0, "Tank Temp"}, + {IR, 7, 0, "Steam Output Mass"}, + {IR, 8, 0, "Steam Output Percent"}, + {IR_10x, 9, 1500, "Water Until ADS"}, // 1 = 100 lbs (I know this is 10x function only) + {IR_10x, 10, 10000, "Water Until Service"}, // 1 = 100 lbs (I know this is 10x function only) + + {HR, 0, 3, "Run Mode"}, // Operation_Mode, 1:auto, 2:local standby, 3:system standby, 4:manual drain + {HR, 1, 0, "Space RH Setpoint"}, // Relative_Humidity_SP + {HR, 3, 85, "Duct High Limit Setpoint"}, +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H \ No newline at end of file diff --git a/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/main.cpp b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/main.cpp new file mode 100644 index 0000000..a38c2d0 --- /dev/null +++ b/src/BMS/HUM/HUM_DriSteem_RTS_RX36_TCP/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the DriSteem Humidifier (TCP) Emulator. + * @author Emmanuel Hernandez Cruz, Robert J Davis + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of the DriSteem Humidifier unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/README.md b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/README.md new file mode 100644 index 0000000..4a7c8ed --- /dev/null +++ b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/README.md @@ -0,0 +1,40 @@ +# VFD ABB ACH580 RTU + +## Brief Introduction +This is based on a 50hp motor, 480V, 65 FLA, 60Hz, 1800 rpm (PHX3 DC1/2). +Modbus addresses are based on 32-bit registers. + +## List of Equipment +This configuration has been used for these models: +* **ACH580**: 10-23-2025 (PHX3) + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities and at least one hardware serial port for RS485 communication. + +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) +* **RS485 Transceiver**: [RS485 Shield for Arduino.](https://www.dfrobot.com/product-1024.html) + +--- + +## States and Strategies +The hardwire IO signals to/from VFD/PLC are Start Cmd, Stop Cmd, Speed Command, Speed Feedback, Run Status, Fault Status. +User needs to set the speed command (HR 150) in RPM from the PLC +User needs to set the Start command (HR 151) from the PLC +It appears these hard IO registers were arbitrarily chosen for the purpose of this Arduino simulation. +The registers selected are based on FS Config file from CDR project. Run Status and Fault Status registers were added for simulation. + +### Standby State +* **Equipment**: Equipment parameters go back to 0 + +### Running State +* **Ramp Strategy**: The following regisers will dynamically ramp based upon the Speed Cmd: +* Motor Speed Used, Motor Speed estimated, Output Frequency, Motor Current, Motor Torque, DC Voltage, Output Voltage, Output Power +* The logic is based on Affinity laws and nominal motor values stated in the Introduction section. +* **Square Strategy**: Inverter Temperature switches between 40 and 80 based on inherited code. +* **Totalizers Strategy**: Inverter kWh cnt, Hours Run + +### Fail State +* Enters Fail State if Fault Status is set to 0. +While in Fail State, the Start/Stop command is reset to 0. +The only way to exit Fail State is if Fault Status = 1 --> Standby State. \ No newline at end of file diff --git a/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Fail.cpp b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Fail.cpp new file mode 100644 index 0000000..987b5fd --- /dev/null +++ b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Fail.cpp @@ -0,0 +1,97 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Robert J Davis + * @date 2025-10-30 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + * + */ +#include "States/State_Standby.h" +#include "States/State_Fail.h" +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" + +#include +#include + +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object. + * + * This constructor sets the associated analog signals to the same values as Standby. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + addStrategy("Speed Feedback", new RampStrategy(0.0f, 200.0f, 1000 )); + addStrategy("Motor Current", new RampStrategy(0.0f, 20.0f, 1000 )); + addStrategy("Motor Torque", new RampStrategy(0.0f, 20.0f, 1000 )); + addStrategy("Inverter Temperature", new RampStrategy(0.0f, 1.0f, 1000 )); + + addStrategy("Output Frequency", new SingleValueStrategy(0.1f, 0.2f, 1000 )); + addStrategy("Output Voltage", new SingleValueStrategy(0.1f, 0.1f, 1000 )); + addStrategy("DC Voltage", new SingleValueStrategy(0.1f, 0.1f, 1000 )); + addStrategy("Motor Shaft Power", new SingleValueStrategy(0.1f, 0.1f, 1000 )); +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * While in FailState, the Unit cannot be started and the Start/Stop command is reset to 0. + * When the fault is cleared --> Standby State. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + int faultNotPresent = getPointValue(equipment, "Fault Status"); + if(faultNotPresent == 1){ + return new StandbyState(); + } + setPointValue(equipment, "Start/Stop", 0); + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. Sets the Run Status to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); + setPointValue(equipment, "Speed Scaling", 1800); + setPointValue(equipment, "Frequency Scaling", 60); + setPointValue(equipment, "Nominal Current", 65); + setPointValue(equipment, "Nominal Voltage", 480); + setPointValue(equipment, "Nominal Frequency", 60); + setPointValue(equipment, "Nominal Speed", 1800); + setPointValue(equipment, "Nominal Power", 50); + setPointValue(equipment, "Run Status", 0); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); + +} \ No newline at end of file diff --git a/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Running.cpp b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Running.cpp new file mode 100644 index 0000000..9fc5ab2 --- /dev/null +++ b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Running.cpp @@ -0,0 +1,165 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Robert J Davis + * @date 2025-10-22 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ + +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "Strategies/Strategy_Behavior.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Totalizer.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_Square.h" +#include "Equipment/Equipment.h" +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" + +#include +#include + +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state, such as speed feedback, current, torque, hours run, etc. + * These values are based on a 50hp motor, 480V, 65 FLA, 60Hz, 1800 rpm (PHX3 DC1/2) + */ +template<> +RunningState::RunningState() { + addStrategy("Speed Feedback", new RampStrategy(1800.0f, 100.0f, 1000)); + addStrategy("Motor Current", new RampStrategy(65.0f, 7.0f, 1000)); + addStrategy("Motor Torque", new RampStrategy(90.0f, 10.0f, 1000)); + addStrategy("Inverter Temperature", new SquareStrategy(40.0f, 80.0f, 1000)); + + addStrategy("Output Frequency", new RampStrategy(60.0f, 3.0f, 1000 )); + addStrategy("Output Voltage", new RampStrategy(480.0f, 15.0f, 1000 )); + addStrategy("DC Voltage", new RampStrategy(678.0f, 20.0f, 1000 )); + addStrategy("Motor Shaft Power", new RampStrategy(36.7f, 2.0f, 1000 )); + addStrategy("Inverter MWh counter", new TotalizerStrategy(1000)); + addStrategy("Inverter kWh counter", new TotalizerStrategy(1000)); +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. If Fault is 0 (there is a fault present) --> FailState + * 2. It reads the "Stop/Start" command point (from PLC). If it's 0, it transitions to StandbyState. + * + * If no transition occurs, it updates values according to speed setpoint sent from PLC. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Running update function"); + + // If Fault Status = 0, there is a fault --> FailState + int faultNotPresent = getPointValue(equipment, "Fault Status"); + if(faultNotPresent == 0){ + return new FailState({"Fault Status"}); + } + + int VFD_Start_Stop = getPointValue(equipment, "Start/Stop"); + if (VFD_Start_Stop == 0){ + return new StandbyState(); + } + + float speed_pct = getPointValue(equipment, "Speed Cmd") / 1800.0f; + // Based on Affinity Laws. Motor: 65 FLA, 480V, 60Hz, 1800 rpm, 50hp + float voltage_update = speed_pct * 480; + float dc_voltage_update = speed_pct * 678; + float current_update = speed_pct * speed_pct * 65; + float torque_update = speed_pct * speed_pct * 100; // This is a % of nominal motor torque + float freq_update = speed_pct * 60; + float power_update = speed_pct * speed_pct * speed_pct * 36.77f; // 50 hp ~ 36.77kW + + float currentSP = getPointValue(equipment, "Speed Cmd"); + + Strategy_Behavior* speedFeedback = getStrategy("Speed Feedback"); + if (speedFeedback) { + static_cast(speedFeedback)->setTarget(currentSP); + } + + Strategy_Behavior* frequencystrategy = getStrategy("Output Frequency"); + if (frequencystrategy) { + static_cast(frequencystrategy)->setTarget(freq_update); + } + + Strategy_Behavior* currentstrategy = getStrategy("Motor Current"); + if (currentstrategy) { + static_cast(currentstrategy)->setTarget(current_update); + } + + Strategy_Behavior* torquestrategy = getStrategy("Motor Torque"); + if (torquestrategy) { + static_cast(torquestrategy)->setTarget(torque_update); + } + + Strategy_Behavior* dcvoltagestrategy = getStrategy("DC Voltage"); + if (dcvoltagestrategy) { + static_cast(dcvoltagestrategy)->setTarget(dc_voltage_update); + } + + Strategy_Behavior* voltagestrategy = getStrategy("Output Voltage"); + if (voltagestrategy) { + static_cast(voltagestrategy)->setTarget(voltage_update); + } + + Strategy_Behavior* powerstrategy = getStrategy("Motor Shaft Power"); + if (powerstrategy) { + static_cast(powerstrategy)->setTarget(power_update); + } + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the Run Status" point to indicate the unit is running. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); + setPointValue(equipment, "Speed Scaling", 1800); + setPointValue(equipment, "Frequency Scaling", 60); + setPointValue(equipment, "Nominal Current", 65); + setPointValue(equipment, "Nominal Voltage", 480); + setPointValue(equipment, "Nominal Frequency", 60); + setPointValue(equipment, "Nominal Speed", 1800); + setPointValue(equipment, "Nominal Power", 50); + setPointValue(equipment, "Run Status", 1); +} + +/** + * @brief Logic to execute once when exiting the running state. + * Sets the "Output Frequency" to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); + setPointValue(equipment, "Output Frequency", 0.0f); +} \ No newline at end of file diff --git a/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Standby.cpp b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Standby.cpp new file mode 100644 index 0000000..41b3048 --- /dev/null +++ b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/State_Standby.cpp @@ -0,0 +1,103 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Robert J Davis + * @date 2025-10-23 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes several + * strategies to simulate a live but non-operational unit. Most values are ramped down to 0. + */ +template<> +StandbyState::StandbyState() { + addStrategy("Speed Feedback", new RampStrategy(0.0f, 200.0f, 1000 )); + addStrategy("Motor Current", new RampStrategy(0.0f, 20.0f, 1000 )); + addStrategy("Motor Torque", new RampStrategy(0.0f, 20.0f, 1000 )); + addStrategy("Inverter Temperature", new RampStrategy(0.0f, 1.0f, 1000 )); + + addStrategy("Output Frequency", new SingleValueStrategy(0.1f, 0.2f, 1000 )); + addStrategy("Output Voltage", new SingleValueStrategy(0.1f, 0.1f, 1000 )); + addStrategy("DC Voltage", new SingleValueStrategy(0.1f, 0.1f, 1000 )); + addStrategy("Motor Shaft Power", new SingleValueStrategy(0.1f, 0.1f, 1000 )); +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. If Fault is 0 (there is a fault present) --> FailState + * 2. It reads the "Start/Stop" point (from PLC). If it's 1 --> RunningState + * + * If no transition is requested, it applies the strategies defined for the standby state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + + // If Fault Status = 0, there is a fault --> FailState + int faultNotPresent = getPointValue(equipment, "Fault Status"); + if(faultNotPresent == 0){ + return new FailState({"Fault Status"}); + } + + int VFD_Start_Stop = getPointValue(equipment, "Start/Stop"); + if (VFD_Start_Stop == 1){ + return new RunningState(); + } + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * Sets the "Run Status" point to indicate the unit is not running. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); + setPointValue(equipment, "Speed Scaling", 1800); + setPointValue(equipment, "Frequency Scaling", 60); + setPointValue(equipment, "Nominal Current", 65); + setPointValue(equipment, "Nominal Voltage", 480); + setPointValue(equipment, "Nominal Frequency", 60); + setPointValue(equipment, "Nominal Speed", 1800); + setPointValue(equipment, "Nominal Power", 50); + setPointValue(equipment, "Run Status", 0); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + +} \ No newline at end of file diff --git a/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/config.h b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/config.h new file mode 100644 index 0000000..78bff06 --- /dev/null +++ b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/config.h @@ -0,0 +1,104 @@ +/** + * @file config.h + * @brief Main configuration file for the ABB ACH580 VFD (RTU) emulator. + * @author Robert J Davis + * @date 2025-10-22 + * + * This file contains important configurations for the Modbus RTU communication + * and the specific register map for the emulated device. + * These are 32-bit modbus registers. + * Added "Run Status" and "Fault Status" to simulated hard IO points and send feedback to PLC during simulation. + */ + +#ifndef CONFIG_H +#define CONFIG_H +#include +#include "core.h" +#include "Equipment/Equipment.h" + + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ + const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ + IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {HR, 149, 1650, "Speed Cmd"}, // arbitrary register number - receive signal from PLC (hardwire IO in field); expecting rpm (1800 rpm max) + {HR, 151, 1, "Start/Stop"}, // arbitrary register number - receive signal from PLC (hardwire IO in practice) + {HR, 152, 0, "HOA Command"}, // arbitrary register number - not used in program + {HR, 154, 0, "Run Status"}, // arbitrary register number - 0:off, 1:on (simulated hardwire IO) sending feedback to PLC during simulation. + {HR, 155, 1, "Fault Status"}, // arbitrary register number - 0:faulted, 1:not faulted (simulated hardwire IO). When = 0, will turn off VFD. + // {HR, 156, 0, "Speed Feedback"}, // arbitrary register number - send signal to PLC (simulated hardwire IO). Will be equal to Motor Speed Used register + + {HR, 100, 0, "Speed Feedback"}, // 1800 rpm max + {HR, 105, 0, "Output Frequency"}, // 60 Hz @100% speed + {HR, 106, 0, "Motor Current"}, // 65 FLA + {HR_10x, 109, 0, "Motor Torque"}, // % of nominal torque + {HR_10x, 110, 0, "DC Voltage"}, // approx 678 VDC @100% speed + {HR, 112, 0, "Output Voltage"}, // 480 VAC + {HR_10x, 116, 0, "Motor Shaft Power"}, // 50 hp ~ 36.77 kW + {HR, 118, 0, "Inverter MWh counter"}, + {HR_10x, 119, 0, "Inverter kWh counter"}, + {HR, 510, 0, "Inverter Temperature"}, // RJD: Changed from HR_10x to HR, % of fault limit + {HR, 519, 0, "Diagnostic Word"}, // not used in program. Bit 9:Drive Over-Temp Alarm + + {HR, 1000, 0, "DI Status"}, // not used in program. + {HR, 1211, 0, "AI1 Scaled"}, // not used in program. + {HR, 1221, 0, "AI2 Scaled"}, // not used in program. + {HR, 1310, 0, "AO1 Actual"}, // not used in program. + {HR, 1910, 0, "External Control Location"}, // not used in program. + {HR, 4600, 0, "Speed Scaling"}, // ADD: 1800 rpm + {HR, 4601, 0, "Frequency Scaling"}, // ADD: 60 Hz + {HR, 9905, 0, "Nominal Current"}, // ADD: 65 A + {HR_10x, 9906, 0, "Nominal Voltage"}, // ADD: 480 V + {HR_10x, 9907, 0, "Nominal Frequency"}, // ADD: 60 Hz + {HR, 9908, 0, "Nominal Speed"}, // ADD: 1800 rpm + {HR_10x, 9909, 0, "Nominal Power"}, // ADD: 50 hp + +}; +//Size of modbus map used in FOR cycles, automatically calculated. +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** + * @brief The main loop update interval in milliseconds. + */ +int interval = 250; + +#endif // CONFIG_H diff --git a/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/main.cpp b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/main.cpp new file mode 100644 index 0000000..a77f9b2 --- /dev/null +++ b/src/BMS/VFD/PHX3_VFD_ABB_ACH580_RTU/main.cpp @@ -0,0 +1,78 @@ +/** + * @file main.cpp + * @brief Main execution program for the ABB ACH580 VFD (RTU) Emulator. + * @author Emmanuel Hernandez Cruz, Robert J Davis + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based + * emulator of a ABB ACH580 VFD unit. The program communicates via the + * Modbus RTU protocol over a serial connection. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - A Modbus RTU server with parameters from config.h. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus RTU server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Modbus RTU and register map configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" + +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication + * for debugging and the Modbus RTU server. It then creates and initializes all + * the Modbus points based on the `mb_map` array in `config.h`. + */ +const int rtsPin = 4; +void setup() { + Serial.begin(115200); + Serial.println("Setup function started"); + + Serial2.begin(BAUDRATE, SERIAL_8N1, RX_PIN, TX_PIN); + mb.begin(&Serial2, RST_PIN); // Start the server + mb.slave(MODBUS_ID); // Set the slave ID + + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/BMS/VFD/VFD_ABB_ACH580_RTU/State_Running.cpp b/src/BMS/VFD/VFD_ABB_ACH580_RTU/State_Running.cpp index 8dd88b8..b94536c 100644 --- a/src/BMS/VFD/VFD_ABB_ACH580_RTU/State_Running.cpp +++ b/src/BMS/VFD/VFD_ABB_ACH580_RTU/State_Running.cpp @@ -1,8 +1,8 @@ /** * @file State_Running.cpp * @brief Implementation of the RunningState class. - * @author Emmanuel Hernandez Cruz - * @date 2025-09-05 + * @author Emmanuel Hernandez Cruz, Robert J Davis + * @date 2025-10-22 * * This file contains the implementation for the RunningState, which defines * the behavior of the equipment when it is actively running. @@ -41,8 +41,11 @@ */ template<> RunningState::RunningState() { - - addStrategy("Inverter Temperature", new SquareStrategy(40.0f, 80.0f,1000)); + addStrategy("Inverter Temperature", new SquareStrategy(40.0f, 80.0f, 1000)); + addStrategy("Motor Speed Used", new RampStrategy(100.0f, 10.0f, 1000)); + addStrategy("Motor Speed Estimated", new RampStrategy(80.0f, 10.0f, 1000)); + addStrategy("Motor Current", new RampStrategy(65.0f, 2.0f, 1000)); + addStrategy("Motor Torque", new RampStrategy(200.0f, 10.0f, 1000)); } /** diff --git a/src/Base_TCP/config.h b/src/Base_TCP/config.h index 09bf37f..ca0d770 100644 --- a/src/Base_TCP/config.h +++ b/src/Base_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "QTS_ATL_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "Fayetteville123"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 25, 115); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 25, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; diff --git a/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Running.cpp b/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Running.cpp index 4fab407..8075096 100644 --- a/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Running.cpp +++ b/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Running.cpp @@ -39,20 +39,19 @@ template<> RunningState::RunningState() { - addStrategy("Source 1 Volts AB", new SingleValueStrategy(0.0F, 0.0f, 1000)); - addStrategy("Source 1 Volts BC", new SingleValueStrategy(0.0F, 0.0f, 1000)); - addStrategy("Source 2 Volts CA", new SingleValueStrategy(0.0F, 0.0f, 1000)); addStrategy("Source 2 Volts AB", new SingleValueStrategy(480.0F, 2.0f, 1000)); addStrategy("Source 2 Volts BC", new SingleValueStrategy(480.0F, 2.0f, 1000)); addStrategy("Source 2 Volts CA", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("Source 1 Frequency", new SingleValueStrategy(0.0f, 0.0f, 1000)); addStrategy("Source 2 Frequency", new SingleValueStrategy(60.0f, 1.0f, 1000)); - addStrategy("Power Factor", new SingleValueStrategy(90.0f, 2.0f, 1000)); - - addStrategy("Amps A", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("Amps B", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("Amps C", new SingleValueStrategy(1.0f, 5.0f, 1000)); + addStrategy("Volts AB", new SingleValueStrategy(480.0f, 2.0f, 1000)); + addStrategy("Votls BC", new SingleValueStrategy(480.0f, 2.0f, 1000)); + addStrategy("Volts CA", new SingleValueStrategy(480.0f, 2.0f, 1000)); + addStrategy("Amps A", new SingleValueStrategy(1.0f, 3.0f, 1000)); + addStrategy("Amps B", new SingleValueStrategy(1.0f, 3.0f, 1000)); + addStrategy("Amps C", new SingleValueStrategy(1.0f, 3.0f, 1000)); + addStrategy("Total Active Power", new SingleValueStrategy(6.0f, 5.0f, 1000)); + addStrategy("Total Apparent Power", new SingleValueStrategy(6.0f, 5.0f, 1000)); } @@ -78,20 +77,40 @@ State* RunningState::update(Equipment* equipment) return new StandbyState(); } - int I_load = getPointValue(equipment, "ATS_Load"); - int I_rating = getPointValue(equipment, "ATS_Rating"); - float load = static_cast(I_load); - float rating = static_cast(I_rating); - float real_load = rating * (load/100.0f); + float load = getPointValue(equipment, "ATS_Load"); + float rating = getPointValue(equipment, "ATS_Rating"); + float sim_load = rating * (load/100.0f); + Strategy_Behavior* ampsA_svs = getStrategy("Amps A"); Strategy_Behavior* ampsB_svs = getStrategy("Amps B"); Strategy_Behavior* ampsC_svs = getStrategy("Amps C"); - static_cast(ampsA_svs)->setSetpoint(real_load); - static_cast(ampsB_svs)->setSetpoint(real_load); - static_cast(ampsC_svs)->setSetpoint(real_load); - + static_cast(ampsA_svs)->setSetpoint(sim_load); + static_cast(ampsB_svs)->setSetpoint(sim_load); + static_cast(ampsC_svs)->setSetpoint(sim_load); // Apply any strategies defined for the standby state + float v_ab = getPointValue(equipment, "Source 2 Volts AB"); + float v_bc = getPointValue(equipment, "Source 2 Volts BC"); + float v_ca = getPointValue(equipment, "Source 2 Volts CA"); + float i_a = getPointValue(equipment, "Amps A"); + float i_b = getPointValue(equipment, "Amps B"); + float i_c = getPointValue(equipment, "Ampc C"); + float pwr = ((v_ab * i_a) + (v_bc * i_b) + (v_ca * i_c)); + setPointValue(equipment, "Total Active Power", pwr*1000.0f); + float pf = getPointValue(equipment, "Power Factor"); + float a_pwr = pwr * (pf/100.0f); + setPointValue(equipment, "Total Apparent Power", a_pwr*1000.0f); + + float preferred = getPointValue(equipment, "ATS_Preferred"); + if (preferred == 1.0f){ + setPointValue(equipment, "Source 1 Preferred", 1.0f); + setPointValue(equipment, "Source 2 Preferred", 0.0f); + } + if (preferred == 2.0f){ + setPointValue(equipment, "Source 1 Preferred", 0.0f); + setPointValue(equipment, "Source 2 Preferred", 1.0f); + } + _applyStrategies(equipment); return nullptr; } @@ -113,6 +132,11 @@ void RunningState::enterState(Equipment* equipment) { setPointValue(equipment, "Source 1 Preferred", 1); setPointValue(equipment, "Source 2 Preferred", 0); + setPointValue(equipment, "Source 1 Volts AB", 0.0f); + setPointValue(equipment, "Source 1 Volts BC", 0.0f); + setPointValue(equipment, "Source 1 Volts CA", 0.0f); + setPointValue(equipment, "Source 1 Frequency", 0.0f); + int transferQty = getPointValue(equipment, "Number of Transfers"); setPointValue(equipment, "Number of Transfers", transferQty + 1); } diff --git a/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Standby.cpp b/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Standby.cpp index be9fef9..100cf86 100644 --- a/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Standby.cpp +++ b/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/State_Standby.cpp @@ -37,21 +37,21 @@ */ template<> StandbyState::StandbyState() { - // You can add initialization code here if needed - addStrategy("Source 1 Volts AB", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("Source 1 Volts BC", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("Source 1 Volts CA", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("Source 2 Volts AB", new SingleValueStrategy(0.0F, 0.0f, 1000)); - addStrategy("Source 2 Volts BC", new SingleValueStrategy(0.0F, 0.0f, 1000)); - addStrategy("Source 2 Volts CA", new SingleValueStrategy(0.0F, 0.0f, 1000)); - addStrategy("Source 1 Frequency", new SingleValueStrategy(60.0f, 1.0f, 1000)); - addStrategy("Source 2 Frequency", new SingleValueStrategy(0.0f, 0.0f, 1000)); + // You can add initialization code here if needed + addStrategy("Source 1 Volts AB", new SingleValueStrategy(480.0F, 2.0f, 1000)); + addStrategy("Source 1 Volts BC", new SingleValueStrategy(480.0F, 2.0f, 1000)); + addStrategy("Source 1 Volts CA", new SingleValueStrategy(480.0F, 2.0f, 1000)); + addStrategy("Source 1 Frequency", new SingleValueStrategy(60.0f, 1.0f, 1000)); + addStrategy("Power Factor", new SingleValueStrategy(90.0f, 2.0f, 1000)); + addStrategy("Volts AB", new SingleValueStrategy(480.0f, 2.0f, 1000)); + addStrategy("Votls BC", new SingleValueStrategy(480.0f, 2.0f, 1000)); + addStrategy("Volts CA", new SingleValueStrategy(480.0f, 2.0f, 1000)); + addStrategy("Amps A", new SingleValueStrategy(1.0f, 3.0f, 1000)); + addStrategy("Amps B", new SingleValueStrategy(1.0f, 3.0f, 1000)); + addStrategy("Amps C", new SingleValueStrategy(1.0f, 3.0f, 1000)); + addStrategy("Total Active Power", new SingleValueStrategy(6.0f, 5.0f, 1000)); + addStrategy("Total Apparent Power", new SingleValueStrategy(6.0f, 5.0f, 1000)); - addStrategy("Power Factor", new SingleValueStrategy(90.0f, 2.0f, 1000)); - - addStrategy("Amps A", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("Amps B", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("Amps C", new SingleValueStrategy(1.0f, 5.0f, 1000)); } /** @@ -73,19 +73,42 @@ State* StandbyState::update(Equipment* equipment) return new RunningState(); } - int I_load = getPointValue(equipment, "ATS_Load"); - int I_rating = getPointValue(equipment, "ATS_Rating"); - float load = static_cast(I_load); - float rating = static_cast(I_rating); - float real_load = rating * (load/100.0f); + float load = getPointValue(equipment, "ATS_Load"); + float rating = getPointValue(equipment, "ATS_Rating"); + float sim_load = rating * (load/100.0f); + Strategy_Behavior* ampsA_svs = getStrategy("Amps A"); Strategy_Behavior* ampsB_svs = getStrategy("Amps B"); Strategy_Behavior* ampsC_svs = getStrategy("Amps C"); - static_cast(ampsA_svs)->setSetpoint(real_load); - static_cast(ampsB_svs)->setSetpoint(real_load); - static_cast(ampsC_svs)->setSetpoint(real_load); + static_cast(ampsA_svs)->setSetpoint(sim_load); + static_cast(ampsB_svs)->setSetpoint(sim_load); + static_cast(ampsC_svs)->setSetpoint(sim_load); // Apply any strategies defined for the standby state + float v_ab = getPointValue(equipment, "Source 1 Volts AB"); + float v_bc = getPointValue(equipment, "Source 1 Volts BC"); + float v_ca = getPointValue(equipment, "Source 1 Volts CA"); + float i_a = getPointValue(equipment, "Amps A"); + float i_b = getPointValue(equipment, "Amps B"); + float i_c = getPointValue(equipment, "Ampc C"); + float pwr = ((v_ab * i_a) + (v_bc * i_b) + (v_ca * i_c)); + setPointValue(equipment, "Total Active Power", pwr*1000.0f); + float pf = getPointValue(equipment, "Power Factor"); + float a_pwr = pwr * (pf/100.0f); + setPointValue(equipment, "Total Apparent Power", a_pwr*1000.0f); + + /*setPointValue(equipment, "S2 kW", kw); + setPointValue(equipment, "S2 MWh", mwh);*/ + + float preferred = getPointValue(equipment, "ATS_Preferred"); + if (preferred == 1.0f){ + setPointValue(equipment, "Source 1 Preferred", 1.0f); + setPointValue(equipment, "Source 2 Preferred", 0.0f); + } + if (preferred == 2.0f){ + setPointValue(equipment, "Source 1 Preferred", 0.0f); + setPointValue(equipment, "Source 2 Preferred", 1.0f); + } _applyStrategies(equipment); return nullptr; } @@ -107,6 +130,11 @@ void StandbyState::enterState(Equipment* equipment) { setPointValue(equipment, "Source 1 Preferred", 0); setPointValue(equipment, "Source 2 Preferred", 1); + setPointValue(equipment, "Source 2 Volts AB", 0.0f); + setPointValue(equipment, "Source 2 Volts BC", 0.0f); + setPointValue(equipment, "Source 2 Volts CA", 0.0f); + setPointValue(equipment, "Source 2 Frequency", 0.0f); + int transferQty = getPointValue(equipment, "Number of Transfers"); setPointValue(equipment, "Number of Transfers", transferQty + 1); } diff --git a/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/config.h b/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/config.h index 867ffca..6df64d2 100644 --- a/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/config.h +++ b/src/EPMS/ATS/ATS_Eaton_ATC900_RPD_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_ssid"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 15); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 33, 172); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -60,6 +60,7 @@ */ modbusMap mb_map[] = { + {HR, 8, 0, "ATS_Preferred"}, //Internal to control from Modscan {HR, 9, 0, "ATS_Source"}, //Internal to control from Modscan {HR, 10, 0, "ATS_Load"}, //Internal Fault code from Modscan {HR, 11, 0, "ATS_Rating"}, //Internal Fault code from Modscan @@ -86,9 +87,9 @@ modbusMap mb_map[] = {IR, 6158, 0, "Amps A"}, {IR, 6159, 0, "Amps B"}, {IR, 6160, 0, "Amps C"}, - {IR_LONG, 6165, 0, "Total Active Power"}, - {IR_LONG, 6169, 0, "Total Apparent Power"}, - {IR, 6171, 0, "Power Factor"}, + {IR_LONG, 6165, 0, "Total Active Power"}, //0.001 + {IR_LONG, 6169, 0, "Total Apparent Power"}, //0.001 + {IR, 6171, 0, "Power Factor"}, //0.001 {IR, 6263, 0, "Number of Transfers"}, {IR, 6297, 0, "Alarm Status Bits"}, diff --git a/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Running.cpp b/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Running.cpp index 1ea1b5f..cd10304 100644 --- a/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Running.cpp +++ b/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Running.cpp @@ -39,15 +39,15 @@ template<> RunningState::RunningState() { - addStrategy("S2 Volts AB", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("S2 Volts BC", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("S2 Volts CA", new SingleValueStrategy(480.0F, 2.0f, 1000)); + addStrategy("S2 Volts AB", new SingleValueStrategy(4800.0F, 10.0f, 1000)); + addStrategy("S2 Volts BC", new SingleValueStrategy(4800.0F, 10.0f, 1000)); + addStrategy("S2 Volts CA", new SingleValueStrategy(4800.0F, 10.0f, 1000)); - addStrategy("PF", new SingleValueStrategy(90.0f, 2.0f, 1000)); + addStrategy("PF", new SingleValueStrategy(910.0f, 20.0f, 1000)); - addStrategy("S2 Amps A", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("S2 Amps B", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("S2 Amps C", new SingleValueStrategy(1.0f, 5.0f, 1000)); + addStrategy("S2 Amps A", new SingleValueStrategy(200.0f, 100.0f, 1000)); + addStrategy("S2 Amps B", new SingleValueStrategy(200.0f, 100.0f, 1000)); + addStrategy("S2 Amps C", new SingleValueStrategy(200.0f, 100.0f, 1000)); } @@ -74,34 +74,47 @@ State* RunningState::update(Equipment* equipment) } float volts_AB = getPointValue(equipment, "S2 Volts AB"); float volts_BC = getPointValue(equipment, "S2 Volts BC"); - float volts_AC = getPointValue(equipment, "S2 Volts CA"); + float volts_CA = getPointValue(equipment, "S2 Volts CA"); setPointValue(equipment, "S2 Volts AN", volts_AB/1.732); setPointValue(equipment, "S2 Volts BN", volts_BC/1.732); - setPointValue(equipment, "S2 Volts CN", volts_AC/1.732); + setPointValue(equipment, "S2 Volts CN", volts_CA/1.732); int I_load = getPointValue(equipment, "ATS_Load"); int I_rating = getPointValue(equipment, "ATS_Rating"); float load = static_cast(I_load); float rating = static_cast(I_rating); - float real_load = rating * (load/100.0f); + float sim_load = rating * (load/100.0f); Strategy_Behavior* ampsA_svs = getStrategy("S2 Amps A"); Strategy_Behavior* ampsB_svs = getStrategy("S2 Amps B"); Strategy_Behavior* ampsC_svs = getStrategy("S2 Amps C"); - static_cast(ampsA_svs)->setSetpoint(real_load); - static_cast(ampsB_svs)->setSetpoint(real_load); - static_cast(ampsC_svs)->setSetpoint(real_load); + static_cast(ampsA_svs)->setSetpoint(sim_load*1000.0f); + static_cast(ampsB_svs)->setSetpoint(sim_load*1000.0f); + static_cast(ampsC_svs)->setSetpoint(sim_load*1000.0f); - float pf = getPointValue(equipment, "PF"); + float get_pf = getPointValue(equipment, "PF"); + float pf = get_pf/1000.0f; - - float kw = (1.732f * ((volts_AB + volts_BC + volts_AC)/3.0f) * real_load * pf)/1000; - float kva = (1.732f * ((volts_AB + volts_BC + volts_AC)/3.0f) * real_load)/1000; + float real_v_AB = volts_AB/1000.0f; + float real_v_BC = volts_BC/1000.0f; + float real_v_CA = volts_CA/1000.0f; + float kw = (1.732f * ((real_v_AB + real_v_BC + real_v_CA)/3.0f) * sim_load * pf)*10; + float mwh = kw *600.0f; setPointValue(equipment, "S2 kW", kw); - setPointValue(equipment, "S2 kVA", kva); + setPointValue(equipment, "S2 MWh", mwh); + float preferred = getPointValue(equipment, "ATS_Preferred"); + if (preferred == 1.0f){ + setBitValue(equipment, "Source Preferred", 9, true); + setBitValue(equipment, "Source Preferred", 8, false); + } + if (preferred == 2.0f){ + setBitValue(equipment, "Source Preferred", 9, false); + setBitValue(equipment, "Source Preferred", 8, true); + } + // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -117,9 +130,6 @@ void RunningState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Running State..."); // You could also update a Modbus register to show the "standby" state - setPointValue(equipment, "Source Active", 32); - setPointValue(equipment, "Source Preferred", 512); - setPointValue(equipment, "S1 Volts AB", 0.0f); setPointValue(equipment, "S1 Volts BC", 0.0f); setPointValue(equipment, "S1 Volts CA", 0.0f); @@ -129,6 +139,14 @@ void RunningState::enterState(Equipment* equipment) { setPointValue(equipment, "S1 Amps A", 0.0f); setPointValue(equipment, "S1 Amps B", 0.0f); setPointValue(equipment, "S1 Amps C", 0.0f); + setPointValue(equipment, "S1 kW", 0.0f); + setPointValue(equipment, "S1 MWh", 0.0f); + + setBitValue(equipment, "Source Active", 4, false); + setBitValue(equipment, "Source Active", 3, true); + + setBitValue(equipment, "Source Preferred", 8, false); + setBitValue(equipment, "Source Preferred", 9, true); } /** diff --git a/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Standby.cpp b/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Standby.cpp index eadd167..cb1a547 100644 --- a/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Standby.cpp +++ b/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/State_Standby.cpp @@ -38,15 +38,15 @@ template<> StandbyState::StandbyState() { // You can add initialization code here if needed - addStrategy("S1 Volts AB", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("S1 Volts BC", new SingleValueStrategy(480.0F, 2.0f, 1000)); - addStrategy("S1 Volts CA", new SingleValueStrategy(480.0F, 2.0f, 1000)); + addStrategy("S1 Volts AB", new SingleValueStrategy(4800.0F, 10.0f, 1000)); + addStrategy("S1 Volts BC", new SingleValueStrategy(4800.0F, 10.0f, 1000)); + addStrategy("S1 Volts CA", new SingleValueStrategy(4800.0F, 10.0f, 1000)); - addStrategy("PF", new SingleValueStrategy(90.0f, 2.0f, 1000)); + addStrategy("PF", new SingleValueStrategy(910.0f, 20.0f, 1000)); - addStrategy("S1 Amps A", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("S1 Amps B", new SingleValueStrategy(1.0f, 5.0f, 1000)); - addStrategy("S1 Amps C", new SingleValueStrategy(1.0f, 5.0f, 1000)); + addStrategy("S1 Amps A", new SingleValueStrategy(200.0f, 100.0f, 1000)); + addStrategy("S1 Amps B", new SingleValueStrategy(200.0f, 100.0f, 1000)); + addStrategy("S1 Amps C", new SingleValueStrategy(200.0f, 100.0f, 1000)); } /** @@ -68,33 +68,46 @@ State* StandbyState::update(Equipment* equipment) } float volts_AB = getPointValue(equipment, "S1 Volts AB"); float volts_BC = getPointValue(equipment, "S1 Volts BC"); - float volts_AC = getPointValue(equipment, "S1 Volts CA"); + float volts_CA = getPointValue(equipment, "S1 Volts CA"); setPointValue(equipment, "S1 Volts AN", volts_AB/1.732); setPointValue(equipment, "S1 Volts BN", volts_BC/1.732); - setPointValue(equipment, "S1 Volts CN", volts_AC/1.732); + setPointValue(equipment, "S1 Volts CN", volts_CA/1.732); int I_load = getPointValue(equipment, "ATS_Load"); int I_rating = getPointValue(equipment, "ATS_Rating"); float load = static_cast(I_load); float rating = static_cast(I_rating); - float real_load = rating * (load/100.0f); + float sim_load = rating * (load/100.0f); Strategy_Behavior* ampsA_svs = getStrategy("S1 Amps A"); Strategy_Behavior* ampsB_svs = getStrategy("S1 Amps B"); Strategy_Behavior* ampsC_svs = getStrategy("S1 Amps C"); - static_cast(ampsA_svs)->setSetpoint(real_load); - static_cast(ampsB_svs)->setSetpoint(real_load); - static_cast(ampsC_svs)->setSetpoint(real_load); + static_cast(ampsA_svs)->setSetpoint(sim_load*1000.0f); + static_cast(ampsB_svs)->setSetpoint(sim_load*1000.0f); + static_cast(ampsC_svs)->setSetpoint(sim_load*1000.0f); - float pf = getPointValue(equipment, "PF"); + float get_pf = getPointValue(equipment, "PF"); + float pf = get_pf/1000.0f; + float real_v_AB = volts_AB/1000.0f; + float real_v_BC = volts_BC/1000.0f; + float real_v_CA = volts_CA/1000.0f; + float kw = (1.732f * ((real_v_AB + real_v_BC + real_v_CA)/3.0f) * sim_load * pf)*10; + float mwh = kw *600.0f; - float kw = (1.732f * ((volts_AB + volts_BC + volts_AC)/3.0f) * real_load * pf)/1000; - float kva = (1.732f * ((volts_AB + volts_BC + volts_AC)/3.0f) * real_load)/1000; + float preferred = getPointValue(equipment, "ATS_Preferred"); + if (preferred == 1.0f){ + setBitValue(equipment, "Source Preferred", 9, true); + setBitValue(equipment, "Source Preferred", 8, false); + } + if (preferred == 2.0f){ + setBitValue(equipment, "Source Preferred", 9, false); + setBitValue(equipment, "Source Preferred", 8, true); + } setPointValue(equipment, "S1 kW", kw); - setPointValue(equipment, "S1 kVA", kva); + setPointValue(equipment, "S1 MWh", mwh); _applyStrategies(equipment); return nullptr; } @@ -109,8 +122,6 @@ template<> void StandbyState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Standby State..."); - setPointValue(equipment, "Source Active", 64); - setPointValue(equipment, "Source Preferred", 1024); setPointValue(equipment, "S2 Volts AB", 0.0f); setPointValue(equipment, "S2 Volts BC", 0.0f); @@ -121,6 +132,14 @@ void StandbyState::enterState(Equipment* equipment) { setPointValue(equipment, "S2 Amps A", 0.0f); setPointValue(equipment, "S2 Amps B", 0.0f); setPointValue(equipment, "S2 Amps C", 0.0f); + setPointValue(equipment, "S2 kW", 0.0f); + setPointValue(equipment, "S2 MWh", 0.0f); + + setBitValue(equipment, "Source Active", 3, false); + setBitValue(equipment, "Source Active", 4, true); + + setBitValue(equipment, "Source Preferred", 8, false); + setBitValue(equipment, "Source Preferred", 9, true); } /** diff --git a/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/config.h b/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/config.h index 88f51c0..1223b95 100644 --- a/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/config.h +++ b/src/EPMS/ATS/ATS_Woodward_DTSC200A_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(172, 17, 33, 241); /**< @brief The static IP address for the device. */ - IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ + IPAddress local_IP(172, 17, 32, 82); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -60,35 +60,37 @@ */ modbusMap mb_map[] = { + {HR, 8, 0, "ATS_Preferred"}, //Internal to control from Modscan {HR, 9, 0, "ATS_Source"}, //Internal to control from Modscan {HR, 10, 0, "ATS_Load"}, {HR, 11, 0, "ATS_Rating"}, //Internal Fault code from Modscan - {HR, 50009, 0, "PF"}, - {HR_LONG, 50001, 0, "S2 Volts AB"}, - {HR_LONG, 50004, 0, "S2 Volts AN"}, - {HR_LONG, 50007, 0, "S2 Volts BC"}, - {HR_LONG, 50010, 0, "S2 Volts BN"}, - {HR_LONG, 50013, 0, "S2 Volts CA"}, - {HR_LONG, 50016, 0, "S2 Volts CN"}, - {HR_LONG, 50019, 0, "S1 Volts AB"}, - {HR_LONG, 50022, 0, "S1 Volts AN"}, - {HR_LONG, 50025, 0, "S1 Volts BC"}, - {HR_LONG, 50028, 0, "S1 Volts BN"}, - {HR_LONG, 50031, 0, "S1 Volts CA"}, - {HR_LONG, 50034, 0, "S1 Volts CN"}, - {HR_LONG, 50037, 0, "S2 Amps A"}, - {HR_LONG, 50040, 0, "S2 Amps B"}, - {HR_LONG, 50043, 0, "S2 Amps C"}, - {HR_LONG, 50060, 0, "S2 kW"}, - {HR_LONG, 50064, 0, "S2 MWh"}, - {HR, 50078, 0, "Source Preferred"}, // bit 8 and bit 9 - {HR, 50082, 0, "Source Active"}, //bit2 and bit 3 - {HR_LONG, 50091, 0, "S1 Amps A"}, - {HR, 50093, 0, "S1 kW"}, - {HR_LONG, 50094, 0, "S1 Amps B"}, - {HR_LONG, 50097, 0, "S1 Amps C"}, - {HR_LONG, 50100, 0, "S1 MWh"}, + {HR, 50009, 0, "PF"}, //0.001x + {HR_LONG, 50001, 0, "S2 Volts AB"}, //0.1x + {HR_LONG, 50004, 0, "S2 Volts AN"}, //0.1x + {HR_LONG, 50007, 0, "S2 Volts BC"}, //0.1x + {HR_LONG, 50010, 0, "S2 Volts BN"}, //0.1x + {HR_LONG, 50013, 0, "S2 Volts CA"}, //0.1x + {HR_LONG, 50016, 0, "S2 Volts CN"}, //0.1x + {HR_LONG, 50019, 0, "S1 Volts AB"}, //0.1x + {HR_LONG, 50022, 0, "S1 Volts AN"}, //0.1x + {HR_LONG, 50025, 0, "S1 Volts BC"}, //0.1x + {HR_LONG, 50028, 0, "S1 Volts BN"}, //0.1x + {HR_LONG, 50031, 0, "S1 Volts CA"}, //0.1x + {HR_LONG, 50034, 0, "S1 Volts CN"}, //0.1x + {HR_LONG, 50037, 0, "S2 Amps A"}, //0.001x + {HR_LONG, 50040, 0, "S2 Amps B"}, //0.001x + {HR_LONG, 50043, 0, "S2 Amps C"}, //0.001x + {HR_LONG, 50060, 0, "S2 kW"}, + {HR_LONG, 50064, 0, "S2 MWh"}, //0.01x + {HR, 50078, 0, "Source Preferred"}, //bit9 source1 bit8 source 2 + {HR, 50082, 0, "Source Active"}, //bit4 source1 bit3 source 2 + {HR_LONG, 50091, 0, "S1 Amps A"}, //.001x + {HR, 50093, 0, "S1 kW"}, //.1x + {HR_LONG, 50094, 0, "S1 Amps B"}, //.001x + {HR_LONG, 50097, 0, "S1 Amps C"}, //.001x + {HR_LONG, 50100, 0, "S1 MWh"}, //.01x + }; //Size of modbus map used in FOR cycles, automatically calculated. diff --git a/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Running.cpp b/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Running.cpp index b9e4a99..6d6c693 100644 --- a/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Running.cpp +++ b/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Running.cpp @@ -38,6 +38,13 @@ */ template<> RunningState::RunningState() { + addStrategy("V_AB", new SingleValueStrategy(4800.0F, 5.0f, 1000)); + addStrategy("V_BC", new SingleValueStrategy(4800.0F, 5.0f, 1000)); + addStrategy("V_CA", new SingleValueStrategy(4800.0F, 5.0f, 1000)); + + addStrategy("Amps A", new SingleValueStrategy(1.0f, 10.0f, 1000)); + addStrategy("Amps B", new SingleValueStrategy(1.0f, 10.0f, 1000)); + addStrategy("Amps C", new SingleValueStrategy(1.0f, 10.0f, 1000)); } /** @@ -57,7 +64,48 @@ template<> State* RunningState::update(Equipment* equipment) { // STATE control, add conditions if change to a different state is needed Serial.println("Running update function"); - + float State_Ctrl = getPointValue(equipment, "PxControl"); + if (State_Ctrl == 0.0f){ + return new StandbyState(); + } + if (State_Ctrl == 1.0f){ + setBitValue(equipment, "CB_Position", 0, true); + setBitValue(equipment, "CB_Position", 12, false); + } + if (State_Ctrl == 2.0f){ + return new StandbyState(); + } + + float volts_AB = getPointValue(equipment, "V_AB"); + float volts_BC = getPointValue(equipment, "V_BC"); + float volts_AC = getPointValue(equipment, "V_CA"); + + setPointValue(equipment, "V_AN", volts_AB/1.732f); + setPointValue(equipment, "V_BN", volts_BC/1.732f); + setPointValue(equipment, "V_CN", volts_AC/1.732f); + + + int I_load = getPointValue(equipment, "PxLoad"); + int I_rating = getPointValue(equipment, "PxRating"); + float load = static_cast(I_load); + float rating = static_cast(I_rating); + float real_load = rating * (load/100.0f); + setPointValue(equipment, "Amps A", real_load * 10.0f); + setPointValue(equipment, "Amps B", real_load * 10.0f); + setPointValue(equipment, "Amps C", real_load * 10.0f); + setPointValue(equipment, "Amps G", volts_AB * 0.037f); + setPointValue(equipment, "Amps N", volts_BC * 0.034f); + + + + + float kva = (1.732f * ((volts_AB + volts_BC + volts_AC)/4.0f) * real_load * (0.92f))/100000.0f; + float kw = (1.732f * ((volts_AB + volts_BC + volts_AC)/4.0f) * real_load )/10000.0f; + + setPointValue(equipment, "kW", kw); + setPointValue(equipment, "kVA", kva); + setPointValue(equipment, "kVA2", kva); + setPointValue(equipment, "kWh", 1724.0f); // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; diff --git a/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Standby.cpp b/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Standby.cpp index 20029d1..51e0f25 100644 --- a/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Standby.cpp +++ b/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/State_Standby.cpp @@ -56,7 +56,18 @@ template<> State* StandbyState::update(Equipment* equipment) { // STATE control, add conditions if change to a different state is needed Serial.println("Standby update function"); - + float State_Ctrl = getPointValue(equipment, "PxControl"); + if (State_Ctrl == 1.0f){ + return new RunningState(); + } + if (State_Ctrl == 0.0f){ + setBitValue(equipment, "CB_Position", 0, false); + setBitValue(equipment, "CB_Position", 12, false); + } + if (State_Ctrl == 2.0f){ + setBitValue(equipment, "CB_Position", 0, false); + setBitValue(equipment, "CB_Position", 12, true); + } // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -72,6 +83,21 @@ template<> void StandbyState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Standby State..."); + setPointValue(equipment, "V_AB", 0.0f); + setPointValue(equipment, "V_BC", 0.0f); + setPointValue(equipment, "V_CA", 0.0f); + setPointValue(equipment, "V_AN", 0.0f); + setPointValue(equipment, "V_BN", 0.0f); + setPointValue(equipment, "V_CN", 0.0f); + setPointValue(equipment, "Amps A", 0.0f); + setPointValue(equipment, "Amps B", 0.0f); + setPointValue(equipment, "Amps C", 0.0f); + setPointValue(equipment, "Amps G", 0.0f); + setPointValue(equipment, "Amps N", 0.0f); + setPointValue(equipment, "kW", 0.0f); + setPointValue(equipment, "k_VA", 0.0f); + setPointValue(equipment, "k_VA2", 0.0f); + setPointValue(equipment, "kWh", 0.0f); } /** diff --git a/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/config.h b/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/config.h index 3887572..7728a3c 100644 --- a/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/config.h +++ b/src/EPMS/Breaker/BKR_ABB_EMax2_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(172, 17, 22, 152); /**< @brief The static IP address for the device. */ - IPAddress gateway(172, 17, 22, 254); /**< @brief The gateway IP address. */ + const char *ssid = "wifi"; /**< @brief The SSID of the WiFi network. */ + const char *password = "password"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(192, 168, 1, 170); /**< @brief The static IP address for the device. */ + IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -63,23 +63,25 @@ modbusMap mb_map[] = { // Convert from ESP8266 to traditional Modbus addressing: subtract 30001/40001. // Input Registers (3x) - Floating Point (MSB & LSB) - {IR, 40, 0, "CB_Position" }, // 300041.0 - Circuit Breaker Position - {IR, 40, 0, "CB_Trip" }, // 300041.12 - Circuit Breaker Tripped - {IR_LONG, 100, 0, "Amps_A" }, //DWORD - {IR_LONG, 102, 0, "Amps_B" }, //DWORD - {IR_LONG, 104, 0, "Amps_C" }, //DWORD - {IR_LONG, 106, 0, "Amps_N" }, //DWORD - {IR_LONG, 108, 0, "Amps_G" }, //DWORD - {IR, 150, 0, "V_AN" }, //WORD - {IR, 151, 0, "V_BN" }, //WORD - {IR, 152, 0, "V_CN" }, //WORD - {IR, 154, 0, "V_AB" }, //WORD - {IR, 155, 0, "V_BC" }, //WORD - {IR, 156, 0, "V_CA" }, //WORD - {IR_LONG, 222, 0, "k_VA" }, //LONG - {IR_LONG, 206, 0, "kW" }, //LONG - {IR_LONG, 304, 0, "kWh" }, //LONG - {IR, 253, 0, "k_VA" }, //SHORT + {HR, 9, 0, "PxControl"}, //Open-Close Cmd + {HR, 10, 0, "PxLoad"}, //Adjustble Load + {HR, 11, 0, "PxRating"}, //Max amp to calculate kw, kVA, etc + {IR, 39, 0, "CB_Position" }, // 300041.0 - Circuit Breaker Position || 300041.12 - Circuit Breaker Tripped + {IR_LONG, 99, 0, "Amps A" }, //DWORD + {IR_LONG, 101, 0, "Amps B" }, //DWORD + {IR_LONG, 103, 0, "Amps C" }, //DWORD + {IR_LONG, 105, 0, "Amps N" }, //DWORD + {IR_LONG, 107, 0, "Amps G" }, //DWORD + {IR, 149, 0, "V_AN" }, //WORD + {IR, 150, 0, "V_BN" }, //WORD + {IR, 151, 0, "V_CN" }, //WORD + {IR, 153, 0, "V_AB" }, //WORD + {IR, 154, 0, "V_BC" }, //WORD + {IR, 155, 0, "V_CA" }, //WORD + {IR_LONG, 221, 0, "k_VA" }, //LONG + {IR_LONG, 205, 0, "kW" }, //LONG + {IR_LONG, 303, 0, "kWh" }, //LONG + {IR, 252, 0, "k_VA2" }, //SHORT }; //Size of modbus map used in FOR cycles, automatically calculated. diff --git a/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Running.cpp b/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Running.cpp index 4aaabcd..e044cb4 100644 --- a/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Running.cpp +++ b/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Running.cpp @@ -38,11 +38,11 @@ */ template<> RunningState::RunningState() { - addStrategy("Volts AB", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("Volts BC", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("Volts CA", new SingleValueStrategy(480.0F, 5.0f, 1000)); + addStrategy("Volts AB", new SingleValueStrategy(4800.0F, 5.0f, 1000)); + addStrategy("Volts BC", new SingleValueStrategy(4800.0F, 5.0f, 1000)); + addStrategy("Volts CA", new SingleValueStrategy(4800.0F, 5.0f, 1000)); - addStrategy("PF", new SingleValueStrategy(90.0f, 1.0f, 1000)); + addStrategy("PF", new SingleValueStrategy(900.0f, 1.0f, 1000)); addStrategy("Amps A", new SingleValueStrategy(1.0f, 10.0f, 1000)); addStrategy("Amps B", new SingleValueStrategy(1.0f, 10.0f, 1000)); @@ -66,9 +66,11 @@ template<> State* RunningState::update(Equipment* equipment) { // STATE control, add conditions if change to a different state is needed Serial.println("Running update function"); - Serial.println("Running update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 1){ + if (State_Ctrl == 0.0f){ + return new StandbyState(); + } + if (State_Ctrl == 2.0f){ return new StandbyState(); } // Apply any strategies defined for the standby state @@ -76,9 +78,9 @@ State* RunningState::update(Equipment* equipment) float volts_BC = getPointValue(equipment, "Volts BC"); float volts_AC = getPointValue(equipment, "Volts CA"); - setPointValue(equipment, "Volts AN", volts_AB/1.732); - setPointValue(equipment, "Volts BN", volts_BC/1.732); - setPointValue(equipment, "Volts CN", volts_AC/1.732); + setPointValue(equipment, "Volts AN", volts_AB/1.732f); + setPointValue(equipment, "Volts BN", volts_BC/1.732f); + setPointValue(equipment, "Volts CN", volts_AC/1.732f); int I_load = getPointValue(equipment, "Load"); @@ -86,18 +88,21 @@ State* RunningState::update(Equipment* equipment) float load = static_cast(I_load); float rating = static_cast(I_rating); float real_load = rating * (load/100.0f); - setPointValue(equipment, "Amps A", real_load); - setPointValue(equipment, "Amps B", real_load); - setPointValue(equipment, "Amps C", real_load); + setPointValue(equipment, "Amps A", real_load * 10.0f); + setPointValue(equipment, "Amps B", real_load * 10.0f); + setPointValue(equipment, "Amps C", real_load * 10.0f); + setPointValue(equipment, "Amps G", volts_AB * 0.037f); + setPointValue(equipment, "Amps N", volts_BC * 0.034f); float pf = getPointValue(equipment, "PF"); - float kw = (1.732f * ((volts_AB + volts_BC + volts_AC)/3.0f) * real_load * (pf/100))/100; - float kva = (1.732f * ((volts_AB + volts_BC + volts_AC)/3.0f) * real_load)/100; + float kva = (1.732f * ((volts_AB + volts_BC + volts_AC)/4.0f) * real_load * (pf/100.0f))/100000.0f; + float kw = (1.732f * ((volts_AB + volts_BC + volts_AC)/4.0f) * real_load )/10000.0f; setPointValue(equipment, "kW", kw); setPointValue(equipment, "kVA", kva); + setPointValue(equipment, "kWh", 1724.0f); // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -113,7 +118,8 @@ void RunningState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Running State..."); // You could also update a Modbus register to show the "standby" state - setPointValue(equipment, "CB Position", 1); + setBitValue(equipment, "CB Position", 0, true); + setBitValue(equipment, "CB Position", 12, false); } /** diff --git a/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Standby.cpp b/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Standby.cpp index c51a4c2..e065339 100644 --- a/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Standby.cpp +++ b/src/EPMS/Breaker/BKR_ABB_XT_TCP/State_Standby.cpp @@ -57,9 +57,16 @@ State* StandbyState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Standby update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 2){ + if (State_Ctrl == 1.0f){ return new RunningState(); } + + if (State_Ctrl == 0.0f){ + setBitValue(equipment, "CB Position", 12, false); + } + if (State_Ctrl == 2.0f){ + setBitValue(equipment, "CB Position", 12, true); + } // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -75,7 +82,7 @@ template<> void StandbyState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Standby State..."); - setPointValue(equipment, "CB Position", 0); + setBitValue(equipment, "CB Position", 0, false); setPointValue(equipment, "Volts AB", 0.0f); setPointValue(equipment, "Volts BC", 0.0f); setPointValue(equipment, "Volts CA", 0.0f); @@ -86,8 +93,12 @@ void StandbyState::enterState(Equipment* equipment) { setPointValue(equipment, "Amps A", 0.0f); setPointValue(equipment, "Amps B", 0.0f); setPointValue(equipment, "Amps C", 0.0f); + setPointValue(equipment, "Amps G", 0.0f); + setPointValue(equipment, "Amps N", 0.0f); setPointValue(equipment, "kW", 0.0f); setPointValue(equipment, "kVA", 0.0f); + setPointValue(equipment, "kWh", 0.0f); + setBitValue(equipment, "Alarm General", 0, false); } /** diff --git a/src/EPMS/Breaker/BKR_ABB_XT_TCP/config.h b/src/EPMS/Breaker/BKR_ABB_XT_TCP/config.h index f3742ab..7dd406b 100644 --- a/src/EPMS/Breaker/BKR_ABB_XT_TCP/config.h +++ b/src/EPMS/Breaker/BKR_ABB_XT_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(172, 17, 30, 241); /**< @brief The static IP address for the device. */ - IPAddress gateway(172, 17, 30, 1); /**< @brief The gateway IP address. */ + IPAddress local_IP(172, 17, 32, 102); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -63,7 +63,7 @@ modbusMap mb_map[] = {HR, 9, 0, "State Control"}, //Open-Close Cmd {HR, 10, 0, "Load"}, //Adjustble Load {HR, 11, 0, "Rating"}, //Max amp to calculate kw, kVA, etc - {IR_LONG, 41, 0, "CB Position"}, + {IR, 41, 0, "CB Position"}, //b0 close open b12 tripped {IR_LONG, 101, 0, "Amps A"}, {IR_LONG, 103, 0, "Amps B"}, {IR_LONG, 105, 0, "Amps C"}, diff --git a/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Running.cpp b/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Running.cpp index 16d2903..431ab66 100644 --- a/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Running.cpp +++ b/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Running.cpp @@ -68,7 +68,10 @@ State* RunningState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Running update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 1){ + if (State_Ctrl == 0){ + return new StandbyState(); + } + if (State_Ctrl == 2){ return new StandbyState(); } // Apply any strategies defined for the standby state @@ -118,6 +121,7 @@ void RunningState::enterState(Equipment* equipment) { Serial.println("Enter Running State..."); // You could also update a Modbus register to show the "standby" state setPointValue(equipment, "CB Position", 2048); + setPointValue(equipment, "CB Trip", 0.0f); } diff --git a/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Standby.cpp b/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Standby.cpp index 5dd2e42..f2195c2 100644 --- a/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Standby.cpp +++ b/src/EPMS/Breaker/BKR_Eaton_PXR20_25/State_Standby.cpp @@ -57,9 +57,16 @@ State* StandbyState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Standby update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 2){ + if (State_Ctrl == 1){ return new RunningState(); } + + if (State_Ctrl == 0){ + setPointValue(equipment, "CB Trip", 0.0f); + } + if (State_Ctrl == 2){ + setPointValue(equipment, "CB Trip", 1.0f); + } // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; diff --git a/src/EPMS/Breaker/BKR_Eaton_PXR20_25/config.h b/src/EPMS/Breaker/BKR_Eaton_PXR20_25/config.h index 79be276..6a3bd12 100644 --- a/src/EPMS/Breaker/BKR_Eaton_PXR20_25/config.h +++ b/src/EPMS/Breaker/BKR_Eaton_PXR20_25/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 33, 167); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; diff --git a/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Running.cpp b/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Running.cpp index 3fb5e0b..a7c0ad2 100644 --- a/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Running.cpp +++ b/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Running.cpp @@ -61,7 +61,10 @@ State* RunningState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Running update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 1){ + if (State_Ctrl == 0.0f){ + return new StandbyState(); + } + if (State_Ctrl == 2.0f){ return new StandbyState(); } @@ -92,7 +95,9 @@ void RunningState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Running State..."); // You could also update a Modbus register to show the "standby" state - setPointValue(equipment, "Status", 4); + + setBitValue(equipment, "Status", 2, true); + setBitValue(equipment, "Tripped", 0, false); } diff --git a/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Standby.cpp b/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Standby.cpp index c7a1db4..b98eb98 100644 --- a/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Standby.cpp +++ b/src/EPMS/Breaker/BKR_Susol_ACB_TCP/State_Standby.cpp @@ -57,9 +57,16 @@ State* StandbyState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Standby update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 2){ + if (State_Ctrl == 1.0f){ return new RunningState(); } + + if (State_Ctrl == 0.0f){ + setBitValue(equipment, "Tripped", 0, false); + } + if (State_Ctrl == 2.0f){ + setBitValue(equipment, "Tripped", 0, true); + } // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -75,11 +82,13 @@ template<> void StandbyState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Standby State..."); - setPointValue(equipment, "Status", 0); setPointValue(equipment, "Amps A", 0.0f); setPointValue(equipment, "Amps B", 0.0f); setPointValue(equipment, "Amps C", 0.0f); + setPointValue(equipment, "Amps N", 0.0f); + + setBitValue(equipment, "Status", 2, false); } /** diff --git a/src/EPMS/Breaker/BKR_Susol_ACB_TCP/config.h b/src/EPMS/Breaker/BKR_Susol_ACB_TCP/config.h index 2ee81ea..66287f0 100644 --- a/src/EPMS/Breaker/BKR_Susol_ACB_TCP/config.h +++ b/src/EPMS/Breaker/BKR_Susol_ACB_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 238); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 138, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 33, 149); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -64,11 +64,12 @@ modbusMap mb_map[] = {HR, 10, 0, "Load"}, {HR, 11, 0, "Rating"}, - {IR, 2, 0, "Status"}, + {IR, 2, 0, "Status"}, //bit 2 open-close, {IR, 3, 0, "Amps A"}, {IR, 5, 0, "Amps B"}, {IR, 7, 0, "Amps C"}, {IR, 9, 0, "Amps N"}, + {IR, 13, 0, "Tripped"}, //bit 0 tripped }; //Size of modbus map used in FOR cycles, automatically calculated. diff --git a/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Running.cpp b/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Running.cpp index 387ac71..c334bdd 100644 --- a/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Running.cpp +++ b/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Running.cpp @@ -68,7 +68,10 @@ State* RunningState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Running update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 1){ + if (State_Ctrl == 0.0f){ + return new StandbyState(); + } + if (State_Ctrl == 2.0f){ return new StandbyState(); } // Apply any strategies defined for the standby state @@ -116,7 +119,9 @@ void RunningState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Running State..."); // You could also update a Modbus register to show the "standby" state - setPointValue(equipment, "CB Position", 4096); + + setBitValue(equipment, "CB Position", 12, true); + setBitValue(equipment, "CB Position", 9, false); } diff --git a/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Standby.cpp b/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Standby.cpp index 13f630c..d839d21 100644 --- a/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Standby.cpp +++ b/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/State_Standby.cpp @@ -57,9 +57,17 @@ State* StandbyState::update(Equipment* equipment) // STATE control, add conditions if change to a different state is needed Serial.println("Standby update function"); float State_Ctrl = getPointValue(equipment, "State Control"); - if (State_Ctrl == 2){ + if (State_Ctrl == 1.0f){ return new RunningState(); } + + if (State_Ctrl == 0.0f){ + setBitValue(equipment, "CB Position", 9, false); + } + + if (State_Ctrl == 2.0f){ + setBitValue(equipment, "CB Position", 9, true); + } // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; @@ -86,6 +94,7 @@ void StandbyState::enterState(Equipment* equipment) { setPointValue(equipment, "Amps A", 0.0f); setPointValue(equipment, "Amps B", 0.0f); setPointValue(equipment, "Amps C", 0.0f); + setBitValue(equipment, "CB Position", 12, false); } /** diff --git a/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/config.h b/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/config.h index 07b7b0b..cee6758 100644 --- a/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/config.h +++ b/src/EPMS/Breaker/Susol_Smart_MCCB_TCP/config.h @@ -23,7 +23,7 @@ #include const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(172, 17, 33, 132); /**< @brief The static IP address for the device. */ + IPAddress local_IP(172, 17, 33, 141); /**< @brief The static IP address for the device. */ IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ @@ -64,7 +64,7 @@ modbusMap mb_map[] = {HR, 10, 0, "Load"}, {HR, 11, 0, "Rating"}, - {IR, 207, 0, "CB Position"}, + {IR, 207, 0, "CB Position"}, //bit 9 trip bit 12 open closed {IR_FLOAT, 215, 0, "Amps A"}, {IR_FLOAT, 217, 0, "Amps B"}, {IR_FLOAT, 219, 0, "Amps C"}, diff --git a/src/EPMS/GEN/GEN_CAT_EMCP4_TCP/config.h b/src/EPMS/GEN/GEN_CAT_EMCP4_TCP/config.h index b45aea7..76b42f4 100644 --- a/src/EPMS/GEN/GEN_CAT_EMCP4_TCP/config.h +++ b/src/EPMS/GEN/GEN_CAT_EMCP4_TCP/config.h @@ -60,6 +60,7 @@ */ modbusMap mb_map[] = { // ESP8266 Modbus server uses 0-based addressing, while Modbus Poll uses 1-based addressing. + {HR, 48899, 0, "Alm01" }, // 448900 {HR, 48898, 0, "Alm02" }, // 448899 {HR, 48905, 0, "Alm03" }, // 448906 diff --git a/src/EPMS/GEN/GEN_CAT_GCCP_TCP/README.md b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/README.md new file mode 100644 index 0000000..355156f --- /dev/null +++ b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/README.md @@ -0,0 +1,33 @@ +# EQUIPMENT_TYPE MANUFACTURER MODEL TCP + +## Brief Introduction +Equipment specifc details that make it different from other devices + +## List of Equipmentt +This cofiguration has been used for these models: +* **Model**: 09-15-22 +* **Model**: 09-15-23 +* **Model**: 09-15-25 + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities. +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) + +--- + +## States and Strategies +Provide a brief description of what variables and strategies were used in this configuraiton + +### Standby State +* **Equipment running**: set to 0 +* **Common Alarm**: set to 0 +* **SAT temperature**: set to 85 + +### Running State +* **Equipment running**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 65 deg setpoint + +### Fail State +* **Commong Alarm**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 105 deg setpointset diff --git a/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Fail.cpp b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Fail.cpp new file mode 100644 index 0000000..8bc0385 --- /dev/null +++ b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Fail.cpp @@ -0,0 +1,81 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor receives a list of alarm descriptions and creates strategies + * to set the corresponding Modbus points to a value of 1, indicating an + * active alarm. It also initializes a PID strategy for the 'CW Valve Position' + * to maintain its state during the fault. + * @param activeAlarms A vector of strings, where each string is the + * description of a Modbus point to be set as an active alarm. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + // Simulate a failure: set common alarm and a specific fan alarm. + + +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * This method checks the "Alarm Reset" Modbus point for a command to + * transition back to Standby, which would typically happen after a fault + * is cleared by a user. If no transition is requested, it continues to apply + * the failure strategies (e.g., keeping alarm bits active). + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the "Alarm Common" point to 1 to indicate a general fault condition. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * Clears the "Alarm Common" point to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Running.cpp b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Running.cpp new file mode 100644 index 0000000..44afe79 --- /dev/null +++ b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Running.cpp @@ -0,0 +1,92 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state, such as a PID controller for the 'CW Valve Position' and totalizers + * for the run-hours of each EC fan. + */ +template<> +RunningState::RunningState() { +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. It reads the "ON/OFF Command By BMS" point. If it's 0, it transitions to StandbyState. + * 2. It reads the "Fault Code" point. If it's non-zero, it transitions to FailState, + * passing the corresponding alarm description. + * + * If no transition occurs, it applies the strategies defined for the running state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Running update function"); + float Mode = getPointValue(equipment, "PxMode"); + if (static_cast(Mode) == 2 ){ + return new StandbyState(); + } + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the "Run Status" for all EC fans to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); + // You could also update a Modbus register to show the "standby" state + +} + +/** + * @brief Logic to execute once when exiting the running state. + * Sets the "Run Status" for all EC fans to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); + +} \ No newline at end of file diff --git a/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Standby.cpp b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Standby.cpp new file mode 100644 index 0000000..90f8eb3 --- /dev/null +++ b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/State_Standby.cpp @@ -0,0 +1,89 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes strategies + * to bring the system to a safe, idle condition. It sets a stable value for + * the SAT reading and creates ramp strategies to bring the CW valve and all + * EC fan speeds down to zero. + */ +template<> +StandbyState::StandbyState() { + // You can add initialization code here if needed + + +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method applies the strategies defined for the standby state (e.g., + * ramping values to zero). + * + * @warning This method currently does not check for a command to transition to the + * Running state. This logic needs to be added to allow the unit to start. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + float Mode = getPointValue(equipment, "PxMode"); + if (static_cast(Mode) == 2 ){ + return new RunningState(); + } + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * This method performs cleanup by setting all alarm points and all EC fan + * run status points to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} \ No newline at end of file diff --git a/src/EPMS/GEN/GEN_CAT_GCCP_TCP/config.h b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/config.h new file mode 100644 index 0000000..72959e4 --- /dev/null +++ b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/config.h @@ -0,0 +1,133 @@ +/** + * @file config.h + * @brief Main configuration file for the GEN CAT EMCP4 + * @author Zach Gutierrez + * @date 2025-09-02 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ + const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ + IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + + + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = { + // ESP8266 Modbus server uses 0-based addressing, while Modbus Poll uses 1-based addressing. + {HR, 9, 0, "PxMode" }, // 448900 High_Coolant_Temp_Warning + {HR, 10, 0, "Px01" }, // 448899 Low_Coolant_Temp + {HR, 11, 0, "Px02" }, // 448906 Unexpected_Engine_Shutdown + + {HR, 48900, 0, "Alm01" }, // 448900 High_Coolant_Temp_Warning + {HR, 48899, 0, "Alm02" }, // 448899 Low_Coolant_Temp + {HR, 48906, 0, "Alm03" }, // 448906 Unexpected_Engine_Shutdown + {HR, 48897, 0, "Alm04" }, // 448897 Emergency_Stop + {HR, 48901, 0, "Alm05" }, // 448901 High_Coolant_Temp_Alarm + {HR, 48904, 0, "Alm06" }, // 448904 Engine_Overspeed + {HR, 48902, 0, "Alm07" }, // 448902 Low_Oil_Pressure_Warning + {HR, 48903, 0, "Alm08" }, // 448903 Low_Oil_Pressure_Alarm + {HR, 48908, 0, "Fuel_LoLo" }, // 448908 Fuel_LoLo + {HR, 48913, 0, "Alm10" }, // 448913 Low_Battery_Voltage + {HR, 48898, 0, "Alm11" }, // 448898 Engine_Overcrank + {HR, 48915, 0, "Fuel_Hi" }, // 448915 Fuel_Hi + {HR, 48907, 0, "Fuel_Lo" }, // 448907 Fuel_Lo + {HR, 48912, 0, "Alm14" }, // 448912 High_Battery_Voltage + {HR, 48905, 0, "Common_Alarm" }, // 448905 Common_Alarm + {HR, 48914, 0, "Batt_Charge_Fail" }, // 448914 Battery_Charger_Failure + {HR, 48916, 0, "EPS_Supp_Load" }, // 448916 EPS_Supplying_Load + {HR, 8655, 0, "Bkr_State" }, // 48655 Gen_Breaker_State + {HR, 1025, 0, "Oil Pressure" }, // 41025 Engine_Oil_Pressure + {HR, 1026, 0, "Coolant Temp" }, // 41026 Coolant_Temperature_degC + {HR, 1027, 0, "Oil_Temp_degC" }, // 41027 Oil_Temperature_degC + {HR, 1030, 0, "Battery_Voltage" }, // 41030 Battery_Voltage + {HR, 1031, 0, "Engine_Speed" }, // 41031 Engine_Speed + {HR, 1032, 0, "Freq" }, // 41032 Freq + {HR, 1033, 0, "Volts_AN" }, // 41033 Volts_AN + {HR, 1035, 0, "Volts_BN" }, // 41035 Volts_BN + {HR, 1037, 0, "Volts_CN" }, // 41037 Volts_CN + {HR, 1039, 0, "Volts_AB" }, // 41039 Volts_AB + {HR, 1041, 0, "Volts_BC" }, // 41041 Volts_BC + {HR, 1043, 0, "Volts_CA" }, // 41043 Volts_CA + {HR, 1045, 0, "Amps_A" }, // 41045 Amps_A + {HR, 1047, 0, "Amps_B" }, // 41047 Amps_B + {HR, 1049, 0, "Amps_C" }, // 41049 Amps_C + {HR, 1053, 0, "kW_A" }, // 41053 kW_A + {HR, 1055, 0, "kW_B" }, // 41055 kW_B + {HR, 1057, 0, "kW_C" }, // 41057 kW_C + {HR, 1289, 0, "L_Exhaust_degC" }, // 41289 Left_Exhaust_Temp_degC + {HR, 1290, 0, "R_Exhaust_degC" }, // 41290 Right_Exhaust_Temp_degC + {HR, 1355, 0, "Percent_Load" }, // 41355 Percent_Load + {HR, 1537, 0, "kW_Tot" }, // 41537 kW + {HR, 1539, 0, "kVA_A" }, // 41539 kVA_A + {HR, 1541, 0, "kVA_B" }, // 41541 kVA_B + {HR, 1543, 0, "kVA_C" }, // 41543 kVA_C + {HR, 1545, 0, "kVA_Tot" }, // 41545 kVA + {HR, 1553, 0, "kVAR_Tot" }, // 41553 kVAR + {HR, 1558, 0, "PF_Tot" }, // 41558 PF + {HR, 1799, 0, "TTL_Run_Hours" }, // 41799 TTL_Run_Hours + {HR, 1801, 0, "kWh_Tot" }, // 41801 kWh + {HR, 1809, 0, "TTL_Starts" }, // 41809 TTL_Engine_Starts + {HR, 48909, 0, "Auto_Mode" }, // 448909 Auto_Mode + {HR, 48910, 0, "Stop_Mode" }, // 448910 Stop_Mode + {HR, 48911, 0, "Manual_Mode" }, // 448911 Manual_Mode + {HR, 772, 0, "Gen_Sts" } // 400772 Generator Status +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H diff --git a/src/EPMS/GEN/GEN_CAT_GCCP_TCP/main.cpp b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/main.cpp new file mode 100644 index 0000000..286a98c --- /dev/null +++ b/src/EPMS/GEN/GEN_CAT_GCCP_TCP/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the CRAH Unit (TCP) Emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of a CRAH unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/EPMS/GEN/GEN_HSE/config.h b/src/EPMS/GEN/GEN_HSE/config.h index 49fa677..f5c4439 100644 --- a/src/EPMS/GEN/GEN_HSE/config.h +++ b/src/EPMS/GEN/GEN_HSE/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 81); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; diff --git a/src/EPMS/MVG/SEL_2440 (MVG)/README.md b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/README.md similarity index 100% rename from src/EPMS/MVG/SEL_2440 (MVG)/README.md rename to src/EPMS/MVG/MVG_SC_EC_M505_TCP/README.md diff --git a/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Fail.cpp b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Fail.cpp new file mode 100644 index 0000000..8bc0385 --- /dev/null +++ b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Fail.cpp @@ -0,0 +1,81 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor receives a list of alarm descriptions and creates strategies + * to set the corresponding Modbus points to a value of 1, indicating an + * active alarm. It also initializes a PID strategy for the 'CW Valve Position' + * to maintain its state during the fault. + * @param activeAlarms A vector of strings, where each string is the + * description of a Modbus point to be set as an active alarm. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + // Simulate a failure: set common alarm and a specific fan alarm. + + +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * This method checks the "Alarm Reset" Modbus point for a command to + * transition back to Standby, which would typically happen after a fault + * is cleared by a user. If no transition is requested, it continues to apply + * the failure strategies (e.g., keeping alarm bits active). + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the "Alarm Common" point to 1 to indicate a general fault condition. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * Clears the "Alarm Common" point to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Running.cpp b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Running.cpp new file mode 100644 index 0000000..f3faa44 --- /dev/null +++ b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Running.cpp @@ -0,0 +1,271 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state, such as a PID controller for the 'CW Valve Position' and totalizers + * for the run-hours of each EC fan. + */ +template<> +RunningState::RunningState() { + +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. It reads the "ON/OFF Command By BMS" point. If it's 0, it transitions to StandbyState. + * 2. It reads the "Fault Code" point. If it's non-zero, it transitions to FailState, + * passing the corresponding alarm description. + * + * If no transition occurs, it applies the strategies defined for the running state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Running update function"); + float StateCtrl = getPointValue(equipment, "Px_Mode"); + if (StateCtrl == 1.0f) { + return new StandbyState(); + } + + float W1 = getPointValue(equipment, "Px_W1"); + float W2 = getPointValue(equipment, "Px_W2"); + float W3 = getPointValue(equipment, "Px_W3"); + float W4 = getPointValue(equipment, "Px_W4"); + float W5 = getPointValue(equipment, "Px_W5"); + float W6 = getPointValue(equipment, "Px_W6"); + // Apply any strategies defined for the standby state + + switch (static_cast(W1)){ + case 0: + setBitValue(equipment, "MVG_STS_01", 0, false); + setBitValue(equipment, "MVG_STS_01", 1, false); + setBitValue(equipment, "MVG_STS_01", 2, false); + break; + case 1: + setBitValue(equipment, "MVG_STS_01", 0, true); + setBitValue(equipment, "MVG_STS_01", 1, false); + setBitValue(equipment, "MVG_STS_01", 2, false); + break; + case 2: + setBitValue(equipment, "MVG_STS_01", 0, false); + setBitValue(equipment, "MVG_STS_01", 1, true); + setBitValue(equipment, "MVG_STS_01", 2, false); + break; + case 3: + setBitValue(equipment, "MVG_STS_01", 0, true); + setBitValue(equipment, "MVG_STS_01", 1, false); + setBitValue(equipment, "MVG_STS_01", 2, true); + break; + default: + setBitValue(equipment, "MVG_STS_01", 0, false); + setBitValue(equipment, "MVG_STS_01", 1, false); + setBitValue(equipment, "MVG_STS_01", 2, false); + break; + } + + switch (static_cast(W2)){ + case 0: + setBitValue(equipment, "MVG_STS_01", 3, false); + setBitValue(equipment, "MVG_STS_01", 4, false); + setBitValue(equipment, "MVG_STS_01", 5, false); + break; + case 1: + setBitValue(equipment, "MVG_STS_01", 3, true); + setBitValue(equipment, "MVG_STS_01", 4, false); + setBitValue(equipment, "MVG_STS_01", 5, false); + break; + case 2: + setBitValue(equipment, "MVG_STS_01", 3, false); + setBitValue(equipment, "MVG_STS_01", 4, true); + setBitValue(equipment, "MVG_STS_01", 5, false); + break; + case 3: + setBitValue(equipment, "MVG_STS_01", 3, true); + setBitValue(equipment, "MVG_STS_01", 4, false); + setBitValue(equipment, "MVG_STS_01", 5, true); + break; + default: + setBitValue(equipment, "MVG_STS_01", 3, false); + setBitValue(equipment, "MVG_STS_01", 4, false); + setBitValue(equipment, "MVG_STS_01", 5, false); + break; + } + + switch (static_cast(W3)){ + case 0: + setBitValue(equipment, "MVG_STS_01", 6, false); + setBitValue(equipment, "MVG_STS_01", 7, false); + setBitValue(equipment, "MVG_STS_02", 0, false); + break; + case 1: + setBitValue(equipment, "MVG_STS_01", 6, true); + setBitValue(equipment, "MVG_STS_01", 7, false); + setBitValue(equipment, "MVG_STS_02", 0, false); + break; + case 2: + setBitValue(equipment, "MVG_STS_01", 6, false); + setBitValue(equipment, "MVG_STS_01", 7, true); + setBitValue(equipment, "MVG_STS_02", 0, false); + break; + case 3: + setBitValue(equipment, "MVG_STS_01", 6, true); + setBitValue(equipment, "MVG_STS_01", 7, false); + setBitValue(equipment, "MVG_STS_02", 0, true); + break; + default: + setBitValue(equipment, "MVG_STS_01", 6, false); + setBitValue(equipment, "MVG_STS_01", 7, false); + setBitValue(equipment, "MVG_STS_02", 0, false); + break; + } + + switch (static_cast(W4)){ + case 0: + setBitValue(equipment, "MVG_STS_02", 1, false); + setBitValue(equipment, "MVG_STS_02", 2, false); + setBitValue(equipment, "MVG_STS_02", 3, false); + break; + case 1: + setBitValue(equipment, "MVG_STS_02", 1, true); + setBitValue(equipment, "MVG_STS_02", 2, false); + setBitValue(equipment, "MVG_STS_02", 3, false); + break; + case 2: + setBitValue(equipment, "MVG_STS_02", 1, false); + setBitValue(equipment, "MVG_STS_02", 2, true); + setBitValue(equipment, "MVG_STS_02", 3, false); + break; + case 3: + setBitValue(equipment, "MVG_STS_02", 1, true); + setBitValue(equipment, "MVG_STS_02", 2, false); + setBitValue(equipment, "MVG_STS_02", 3, true); + break; + default: + setBitValue(equipment, "MVG_STS_02", 1, false); + setBitValue(equipment, "MVG_STS_02", 2, false); + setBitValue(equipment, "MVG_STS_02", 3, false); + break; + } + + switch (static_cast(W5)){ + case 0: + setBitValue(equipment, "MVG_STS_02", 4, false); + setBitValue(equipment, "MVG_STS_02", 5, false); + setBitValue(equipment, "MVG_STS_02", 6, false); + break; + case 1: + setBitValue(equipment, "MVG_STS_02", 4, true); + setBitValue(equipment, "MVG_STS_02", 5, false); + setBitValue(equipment, "MVG_STS_02", 6, false); + break; + case 2: + setBitValue(equipment, "MVG_STS_02", 4, false); + setBitValue(equipment, "MVG_STS_02", 5, true); + setBitValue(equipment, "MVG_STS_02", 6, false); + break; + case 3: + setBitValue(equipment, "MVG_STS_02", 4, true); + setBitValue(equipment, "MVG_STS_02", 5, false); + setBitValue(equipment, "MVG_STS_02", 6, true); + break; + default: + setBitValue(equipment, "MVG_STS_02", 4, false); + setBitValue(equipment, "MVG_STS_02", 5, false); + setBitValue(equipment, "MVG_STS_02", 6, false); + break; + } + + switch (static_cast(W6)){ + case 0: + setBitValue(equipment, "MVG_STS_02", 7, false); + setBitValue(equipment, "MVG_STS_03", 0, false); + setBitValue(equipment, "MVG_STS_03", 1, false); + break; + case 1: + setBitValue(equipment, "MVG_STS_02", 7, true); + setBitValue(equipment, "MVG_STS_03", 0, false); + setBitValue(equipment, "MVG_STS_03", 1, false); + break; + case 2: + setBitValue(equipment, "MVG_STS_02", 7, false); + setBitValue(equipment, "MVG_STS_03", 0, true); + setBitValue(equipment, "MVG_STS_03", 1, false); + break; + case 3: + setBitValue(equipment, "MVG_STS_02", 7, true); + setBitValue(equipment, "MVG_STS_03", 0, false); + setBitValue(equipment, "MVG_STS_03", 1, true); + break; + default: + setBitValue(equipment, "MVG_STS_02", 7, false); + setBitValue(equipment, "MVG_STS_03", 0, false); + setBitValue(equipment, "MVG_STS_03", 1, false); + break; + } + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the "Run Status" for all EC fans to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); + // You could also update a Modbus register to show the "standby" state + +} + +/** + * @brief Logic to execute once when exiting the running state. + * Sets the "Run Status" for all EC fans to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); + setPointValue(equipment, "MVG_STS_01", 0); + setPointValue(equipment, "MVG_STS_02", 0); + setPointValue(equipment, "MVG_STS_03", 0); + +} \ No newline at end of file diff --git a/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Standby.cpp b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Standby.cpp new file mode 100644 index 0000000..6dad7d4 --- /dev/null +++ b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/State_Standby.cpp @@ -0,0 +1,88 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes strategies + * to bring the system to a safe, idle condition. It sets a stable value for + * the SAT reading and creates ramp strategies to bring the CW valve and all + * EC fan speeds down to zero. + */ +template<> +StandbyState::StandbyState() { + // You can add initialization code here if needed + +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method applies the strategies defined for the standby state (e.g., + * ramping values to zero). + * + * @warning This method currently does not check for a command to transition to the + * Running state. This logic needs to be added to allow the unit to start. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + float StateCtrl = getPointValue(equipment, "Px_Mode"); + if (StateCtrl == 2.0f) { + return new RunningState(); + } + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * This method performs cleanup by setting all alarm points and all EC fan + * run status points to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); + + + +} +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} \ No newline at end of file diff --git a/src/EPMS/MVG/MVG_SC_EC_M505_TCP/config.h b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/config.h new file mode 100644 index 0000000..3be4ccc --- /dev/null +++ b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/config.h @@ -0,0 +1,86 @@ +/** + * @file config.h + * @brief Main configuration file for the CRAH Unit (TCP) emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 82); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + + + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {HR, 9, 0, "Px_Mode"}, + {HR, 10, 0, "Px_W1"}, + {HR, 11, 0, "Px_W2"}, + {HR, 12, 0, "Px_W3"}, + {HR, 13, 0, "Px_W4"}, + {HR, 14, 0, "Px_W5"}, + {HR, 15, 0, "Px_W6"}, + {HR, 1049, 0, "MVG_STS_01"}, + {HR, 1050, 0, "MVG_STS_02"}, + {HR, 1051, 0, "MVG_STS_03"}, +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H diff --git a/src/EPMS/MVG/MVG_SC_EC_M505_TCP/main.cpp b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/main.cpp new file mode 100644 index 0000000..286a98c --- /dev/null +++ b/src/EPMS/MVG/MVG_SC_EC_M505_TCP/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the CRAH Unit (TCP) Emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of a CRAH unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/EPMS/MVG/SEL_2440_MVG/README.md b/src/EPMS/MVG/SEL_2440_MVG/README.md new file mode 100644 index 0000000..4f156e3 --- /dev/null +++ b/src/EPMS/MVG/SEL_2440_MVG/README.md @@ -0,0 +1,48 @@ +# Daikin Chiller (RTU) Emulator + +This project is an Arduino-based emulator for a Daikin Chiller unit, communicating over Modbus RTU. It is designed to be a flexible template that can be adapted to simulate different types of chillers by modifying the configuration and state logic. + +The emulator operates on a state machine with three core states: +* **Standby**: The chiller is idle but ready. +* **Running**: The chiller is active and operational. +* **Fail**: The chiller has encountered a fault condition. + +## Features + +* **Modbus RTU Communication**: Emulates a Modbus slave device. +* **State Machine Logic**: Simulates different operational states (Standby, Running, Fail). +* **Dynamic Value Simulation**: Uses "Strategies" (e.g., PID, Ramp) to generate realistic, changing values for Modbus points. +* **Configurable Modbus Map**: The entire Modbus register map is defined in a single, easy-to-modify file (`config.h`). +* **Extensible Design**: The structure allows for the addition of new states and behaviors. + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities and at least one hardware serial port for RS485 communication. + +* **Microcontroller**: ESP8266, ESP32, or similar. +* **RS485 Transceiver**: A module like the MAX485 to interface with the Modbus RTU bus. + +## Software Dependencies + +This project relies on a Modbus library. Ensure you have the correct library installed in your Arduino IDE. + +* **Modbus Library**: The code uses a library that provides `ModbusRTU.h` and optionally `ModbusIP_ESP8266.h`. + +--- + +## How to Customize for a New Chiller + +To adapt this template for a new chiller, follow these steps. + +### 1. Configure Device-Specific Parameters (`config.h`) + +Open `CH_Daikin_AWV026B_RTU/config.h`. This is the main file for device-specific settings. + +#### Modbus RTU Settings +Update the following constants for your device's serial communication setup. +```c++ +const int BAUDRATE = 19200; // The serial communication speed +const int RX_PIN = 17; // The GPIO pin for receiving data (RX) +const int TX_PIN = 16; // The GPIO pin for transmitting data (TX) +const int RST_PIN = 4; // The GPIO pin for RS485 direction control +const int MODBUS_ID = 1; // The unique slave ID for this device \ No newline at end of file diff --git a/src/EPMS/MVG/SEL_2440_MVG/State_Fail.cpp b/src/EPMS/MVG/SEL_2440_MVG/State_Fail.cpp new file mode 100644 index 0000000..8bc0385 --- /dev/null +++ b/src/EPMS/MVG/SEL_2440_MVG/State_Fail.cpp @@ -0,0 +1,81 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor receives a list of alarm descriptions and creates strategies + * to set the corresponding Modbus points to a value of 1, indicating an + * active alarm. It also initializes a PID strategy for the 'CW Valve Position' + * to maintain its state during the fault. + * @param activeAlarms A vector of strings, where each string is the + * description of a Modbus point to be set as an active alarm. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + // Simulate a failure: set common alarm and a specific fan alarm. + + +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * This method checks the "Alarm Reset" Modbus point for a command to + * transition back to Standby, which would typically happen after a fault + * is cleared by a user. If no transition is requested, it continues to apply + * the failure strategies (e.g., keeping alarm bits active). + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the "Alarm Common" point to 1 to indicate a general fault condition. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * Clears the "Alarm Common" point to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/EPMS/MVG/SEL_2440_MVG/State_Running.cpp b/src/EPMS/MVG/SEL_2440_MVG/State_Running.cpp new file mode 100644 index 0000000..b9e4a99 --- /dev/null +++ b/src/EPMS/MVG/SEL_2440_MVG/State_Running.cpp @@ -0,0 +1,89 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state, such as a PID controller for the 'CW Valve Position' and totalizers + * for the run-hours of each EC fan. + */ +template<> +RunningState::RunningState() { +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. It reads the "ON/OFF Command By BMS" point. If it's 0, it transitions to StandbyState. + * 2. It reads the "Fault Code" point. If it's non-zero, it transitions to FailState, + * passing the corresponding alarm description. + * + * If no transition occurs, it applies the strategies defined for the running state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Running update function"); + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the "Run Status" for all EC fans to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); + // You could also update a Modbus register to show the "standby" state + +} + +/** + * @brief Logic to execute once when exiting the running state. + * Sets the "Run Status" for all EC fans to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); + +} \ No newline at end of file diff --git a/src/EPMS/MVG/SEL_2440_MVG/State_Standby.cpp b/src/EPMS/MVG/SEL_2440_MVG/State_Standby.cpp new file mode 100644 index 0000000..20029d1 --- /dev/null +++ b/src/EPMS/MVG/SEL_2440_MVG/State_Standby.cpp @@ -0,0 +1,85 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes strategies + * to bring the system to a safe, idle condition. It sets a stable value for + * the SAT reading and creates ramp strategies to bring the CW valve and all + * EC fan speeds down to zero. + */ +template<> +StandbyState::StandbyState() { + // You can add initialization code here if needed + + +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method applies the strategies defined for the standby state (e.g., + * ramping values to zero). + * + * @warning This method currently does not check for a command to transition to the + * Running state. This logic needs to be added to allow the unit to start. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * This method performs cleanup by setting all alarm points and all EC fan + * run status points to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} \ No newline at end of file diff --git a/src/EPMS/MVG/SEL_2440 (MVG)/config.h b/src/EPMS/MVG/SEL_2440_MVG/config.h similarity index 88% rename from src/EPMS/MVG/SEL_2440 (MVG)/config.h rename to src/EPMS/MVG/SEL_2440_MVG/config.h index 3b97232..88714a4 100644 --- a/src/EPMS/MVG/SEL_2440 (MVG)/config.h +++ b/src/EPMS/MVG/SEL_2440_MVG/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_name"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "ArduinoWifiB"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 32, 88); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 32, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; diff --git a/src/EPMS/MVG/SEL_2440_MVG/main.cpp b/src/EPMS/MVG/SEL_2440_MVG/main.cpp new file mode 100644 index 0000000..286a98c --- /dev/null +++ b/src/EPMS/MVG/SEL_2440_MVG/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the CRAH Unit (TCP) Emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of a CRAH unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Running.cpp b/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Running.cpp index d40811b..765a521 100644 --- a/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Running.cpp +++ b/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Running.cpp @@ -36,79 +36,90 @@ * state, such as a PID controller for the 'CW Valve Position' and totalizers * for the run-hours of each EC fan. */ -std::string cbs[] = {"CB0", "CB1", "CB2", "CB3", "CB4", "CB5", "CB6", "CB7", "CB8", }; +std::string cbs[] = {"CB1", "CB2", "CB3", "CB4", "CB5", "CB6", "CB7", "CB8"}; template<> RunningState::RunningState() { - //Example - addStrategy("System Input RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - // + + addStrategy("Input_I1", new SingleValueStrategy(40.0f, 30.0f, 1000)); + addStrategy("Input_I2", new SingleValueStrategy(40.0f, 30.0f, 1000)); + addStrategy("Input_I3", new SingleValueStrategy(40.0f, 30.0f, 1000)); + addStrategy("Input_kVA", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Input_kVAR", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Input_kW", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Input_kWh", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_PF", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Input_V_AB", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_V_AN", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_V_BC", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_V_BN", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_V_CA", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_V_CN", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_LL_Avg", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Input_LN_Avg", new SingleValueStrategy(3.0f, 2.0f, 1000)); for (const std::string& cb : cbs) { std::string tag = ""; - tag = cb + "_V1N"; - addStrategy(tag, new SingleValueStrategy(0.0f, 2.0f, 1000)); tag = ""; - tag = cb + "_V2N"; - addStrategy(tag, new SingleValueStrategy(0.0f, 2.0f, 1000)); + tag = cb + "_I1"; + addStrategy(tag, new SingleValueStrategy(40.0f, 30.0f, 1000)); tag = ""; - tag = cb + "_V3N"; - addStrategy(tag, new SingleValueStrategy(0.0f, 2.0f, 1000)); + tag = cb + "_I2"; + addStrategy(tag, new SingleValueStrategy(40.0f, 30.0f, 1000)); tag = ""; - tag = cb + "_L1PF"; - addStrategy(tag, new SingleValueStrategy(93.0f, 2.0f, 1000)); + tag = cb + "_I3"; + addStrategy(tag, new SingleValueStrategy(40.0f, 30.0f, 1000)); tag = ""; - tag = cb + "_L2PF"; - addStrategy(tag, new SingleValueStrategy(93.0f, 2.0f, 1000)); + tag = cb + "_kVA"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_L3PF"; - addStrategy(tag, new SingleValueStrategy(93.0f, 2.0f, 1000)); + tag = cb + "_kVA1"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_V1THD"; - addStrategy(tag, new SingleValueStrategy(2.0f, 2.0f, 1000)); + tag = cb + "_kVA2"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_V2THD"; - addStrategy(tag, new SingleValueStrategy(2.0f, 2.0f, 1000)); + tag = cb + "_kVA3"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_V3THD"; - addStrategy(tag, new SingleValueStrategy(2.0f, 2.0f, 1000)); - tag = ""; - tag = cb + "_I1THD"; - addStrategy(tag, new SingleValueStrategy(10.0f, 2.0f, 1000)); + tag = cb + "_kVAR"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_I2THD"; - addStrategy(tag, new SingleValueStrategy(10.0f, 2.0f, 1000)); + tag = cb + "_kW"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_I3THD"; - addStrategy(tag, new SingleValueStrategy(10.0f, 2.0f, 1000)); + tag = cb + "_kW1"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_I1Kfactor"; - addStrategy(tag, new SingleValueStrategy(3.0f, 2.0f, 1000)); + tag = cb + "_kW2"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_I2Kfactor"; - addStrategy(tag, new SingleValueStrategy(3.0f, 2.0f, 1000)); + tag = cb + "_kW3"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); tag = ""; - tag = cb + "_I3Kfactor"; - addStrategy(tag, new SingleValueStrategy(3.0f, 2.0f, 1000)); + tag = cb + "_kWh"; + addStrategy(tag, new SingleValueStrategy(0.1f, 100.0f, 1000)); tag = ""; - tag = cb + "_I1TDD"; - addStrategy(tag, new SingleValueStrategy(5.0f, 2.0f, 1000)); - tag = ""; - tag = cb + "_I2TDD"; - addStrategy(tag, new SingleValueStrategy(5.0f, 2.0f, 1000)); - tag = ""; - tag = cb + "_I3TDD"; - addStrategy(tag, new SingleValueStrategy(5.0f, 2.0f, 1000)); - tag = ""; - tag = cb + "_V12"; - addStrategy(tag, new SingleValueStrategy(0.0f, 2.0f, 1000)); - tag = ""; - tag = cb + "_V23"; - addStrategy(tag, new SingleValueStrategy(0.0f, 2.0f, 1000)); - tag = ""; - tag = cb + "_V31"; - addStrategy(tag, new SingleValueStrategy(0.0f, 2.0f, 1000)); + tag = cb + "_PF"; + addStrategy(tag, new SingleValueStrategy(150.0f, 100.0f, 1000)); } + + + addStrategy("Output_I1", new SingleValueStrategy(30.0f, 20.0f, 1000)); + addStrategy("Output_I2", new SingleValueStrategy(30.0f, 30.0f, 1000)); + addStrategy("Output_I3", new SingleValueStrategy(30.0f, 20.0f, 1000)); + addStrategy("Output_IG", new SingleValueStrategy(30.0f, 30.0f, 1000)); + addStrategy("Output_IN", new SingleValueStrategy(30.0f, 20.0f, 1000)); + addStrategy("Output_kVA1", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Output_kVA2", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Output_kVA3", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Output_kWh", new SingleValueStrategy(3.0f, 2.0f, 1000)); + addStrategy("Output_PF", new SingleValueStrategy(150.0f, 100.0f, 1000)); + addStrategy("Output_V_AB", new SingleValueStrategy(30.0f, 20.0f, 1000)); + addStrategy("Output_V_AN", new SingleValueStrategy(30.0f, 30.0f, 1000)); + addStrategy("Output_V_BC", new SingleValueStrategy(30.0f, 20.0f, 1000)); + addStrategy("Output_V_BN", new SingleValueStrategy(30.0f, 30.0f, 1000)); + addStrategy("Output_V_CA", new SingleValueStrategy(30.0f, 20.0f, 1000)); + addStrategy("Output_V_CN", new SingleValueStrategy(30.0f, 30.0f, 1000)); } /** @@ -139,14 +150,14 @@ State* RunningState::update(Equipment* equipment) float cb_count = 0.0f; for (const std::string& cb :cbs){ std::string tag = ""; - tag = "Px " + cb; - if (cb == "CB0") continue; + tag = "Px_" + cb; float cb_status = getPointValue(equipment, tag); - if (static_cast(cb_status)){ + if (cb_status == 1.0f){ cb_count += 1.0f; } } - + Serial.printf("CB_ CLosed = %f \n", cb_count); + int cb_num = 1; for (const std::string& cb : cbs) { std::string tag = ""; Strategy_Behavior* strategy = nullptr; @@ -155,126 +166,224 @@ State* RunningState::update(Equipment* equipment) float cb_status = getPointValue(equipment, tag); float percent_load = getPointValue(equipment, "Px Load"); float Rating = getPointValue(equipment, "Px Rating"); - float total_load = Rating * (percent_load /100.0f); - float cb_load = total_load / cb_count; - - if (static_cast(cb_status) == 1){ - - tag = ""; - tag = cb + "_V1N"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(270.0f); - tag = ""; - tag = cb + "_V2N"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(270.0f); - tag = ""; - tag = cb + "_V3N"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(270.0f); - - tag = ""; - tag = cb + "_V12"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(480.0f); - tag = ""; - tag = cb + "_V23"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(480.0f); - tag = ""; - tag = cb + "_V31"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(480.0f); + float cb_load = 400.0f * (percent_load /1000.0f); + + if (cb_status == 1.0f){ + setBitValue(equipment, "CB_Status", cb_num, true); + setBitValue(equipment, "CB_Tripped", cb_num, false); tag = ""; tag = cb + "_I1"; - setPointValue(equipment, tag, total_load); + setPointValue(equipment, tag, cb_load * 1000.0f); tag = ""; tag = cb + "_I2"; - setPointValue(equipment, tag, total_load); + setPointValue(equipment, tag, cb_load * 1000.0f); tag = ""; tag = cb + "_I3"; - setPointValue(equipment, tag, total_load); - + setPointValue(equipment, tag, cb_load * 1000.0f); tag = ""; - tag = cb + "_L1KW"; - setPointValue(equipment, tag, total_load*1.715f); + tag = cb + "_PF"; + setPointValue(equipment, tag, 910.0f); tag = ""; - tag = cb + "_L2KW"; - setPointValue(equipment, tag, total_load*1.715f); - tag = ""; - tag = cb + "_L3KW"; - setPointValue(equipment, tag, total_load*1.715f); - - tag = ""; - tag = cb + "_L1KVar"; - setPointValue(equipment, tag, total_load*1.715*0.9f); - tag = ""; - tag = cb + "_L2KVar"; - setPointValue(equipment, tag, total_load*1.715*0.9f); - tag = ""; - tag = cb + "_L3KVar"; - setPointValue(equipment, tag, total_load*1.715*0.9f); - - - }else{ - tag = ""; - tag = cb + "_V1N"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(0.0f); - tag = ""; - tag = cb + "_V2N"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(0.0f); - tag = ""; - tag = cb + "_V3N"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(0.0f); - - tag = ""; - tag = cb + "_V12"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(0.0f); - tag = ""; - tag = cb + "_V23"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(0.0f); - tag = ""; - tag = cb + "_V31"; - strategy = getStrategy(tag); - static_cast(strategy)->setSetpoint(0.0f); + tag = cb + "_PF"; + float pf = getPointValue(equipment, tag); - tag = ""; - tag = cb + "_I1"; - setPointValue(equipment, tag, total_load); - tag = ""; - tag = cb + "_I2"; - setPointValue(equipment, tag, total_load); - tag = ""; - tag = cb + "_I3"; - setPointValue(equipment, tag, total_load); tag = ""; - tag = cb + "_L1KW"; - setPointValue(equipment, tag, total_load*0.0f); + tag = cb + "_kW1"; + setPointValue(equipment, tag, cb_load * 48000.0f * pf); + float kW1 = getPointValue(equipment, tag); tag = ""; - tag = cb + "_L2KW"; - setPointValue(equipment, tag, total_load*0.0f); + tag = cb + "_kW2"; + setPointValue(equipment, tag, cb_load * 48000.0f * pf); + float kW2 = getPointValue(equipment, tag); tag = ""; - tag = cb + "_L3KW"; - setPointValue(equipment, tag, total_load*0.0f); + tag = cb + "_kW3"; + setPointValue(equipment, tag, cb_load * 48000.0f * pf); + float kW3 = getPointValue(equipment, tag); + tag = ""; + tag = cb + "_kW"; + setPointValue(equipment, tag, ((kW1 + kW2 + kW3) / 3.0f)*1000.0f); + tag = ""; + tag = cb + "_kWh"; + setPointValue(equipment, tag, 1325.0f); + tag = ""; + tag = cb + "_kVA"; + setPointValue(equipment, tag, cb_load * 480.0f * 10000.0f); + tag = ""; + tag = cb + "_kVA"; + setPointValue(equipment, tag, cb_load * 480.0f * 10000.0f); + tag = ""; + tag = cb + "_kVA"; + setPointValue(equipment, tag, cb_load * 480.0f * 10000.0f); tag = ""; - tag = cb + "_L1KVar"; - setPointValue(equipment, tag, total_load*0.0f); + tag = cb + "_kVA1"; + float kVA1 = getPointValue(equipment, tag); tag = ""; - tag = cb + "_L2KVar"; - setPointValue(equipment, tag, total_load*0.0f); + tag = cb + "_kVA2"; + float kVA2 = getPointValue(equipment, tag); tag = ""; - tag = cb + "_L3KVar"; - setPointValue(equipment, tag, total_load*0.0f); + tag = cb + "_kVA3"; + float kVA3 = getPointValue(equipment, tag); + float kVA = (kVA1 + kVA2 + kVA3) * 1732.0f; + tag = ""; + tag = cb + "_kVA"; + setPointValue(equipment, tag, kVA); + tag = ""; + tag = cb + "_kVAR"; + setPointValue(equipment, tag, kVA / pf); + + } + else{ + if (cb_status == 2.0f){ + setBitValue(equipment, "CB_Tripped", cb_num, true); + } else { + setBitValue(equipment, "CB_Tripped", cb_num, false); + } + setBitValue(equipment, "CB_Status", cb_num, false); + tag = ""; + tag = cb + "_I1"; + setPointValue(equipment, tag, 40.0f); + tag = ""; + tag = cb + "_I2"; + setPointValue(equipment, tag, 0.0f); + tag = ""; + tag = cb + "_I3"; + setPointValue(equipment, tag, 40.0f); + tag = ""; + tag = cb + "_kVA"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kVA1"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kVA2"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kVA3"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kVAR"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kW"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kW1"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kW2"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kW3"; + setPointValue(equipment, tag, 150.0f); + tag = ""; + tag = cb + "_kWh"; + setPointValue(equipment, tag, 0.5f); + tag = ""; + tag = cb + "_PF"; + setPointValue(equipment, tag, 150.0f); + } + cb_num++; + + } + Serial.printf("CB_ CLosed = %f \n", cb_count); + if (cb_count > 0.0f){ + Serial.println("At least one breaker closed..."); + float percent_load = getPointValue(equipment, "Px Load"); + float cb_load = 400.0f * (percent_load /1000.0f); + setPointValue(equipment, "Input_I1", cb_count * cb_load *100.0f); + setPointValue(equipment, "Input_I2", cb_count * cb_load *100.0f); + setPointValue(equipment, "Input_I3", cb_count * cb_load *100.0f); + setPointValue(equipment, "Output_I1", cb_count * cb_load *100.0f); + setPointValue(equipment, "Output_I2", cb_count * cb_load*100.0f); + setPointValue(equipment, "Output_I3", cb_count * cb_load*100.0f); + setPointValue(equipment, "Output_IG", cb_count * 750.0f); + setPointValue(equipment, "Output_IN", cb_count * 482.0f); + + float pf = 0.92f; + setPointValue(equipment, "Input_PF", pf * 930.0f); + setPointValue(equipment, "Output_PF", pf); + float i1 = getPointValue(equipment, "Input_I1"); + float i2 = getPointValue(equipment, "Input_I2"); + float i3 = getPointValue(equipment, "Input_I3"); + + setPointValue(equipment, "Input_kW", 480.0f * ((i1 + i2 + i3) / 3.0f)); + float kW = getPointValue(equipment, "Input_kW"); + setPointValue(equipment, "Input_kVA", kW * 1.732f); + setPointValue(equipment, "Output_kVA1", (kW * 1.732f)/3.0f); + setPointValue(equipment, "Output_kVA2", (kW * 1.732f)/3.0f); + setPointValue(equipment, "Output_kVA3", (kW * 1.732f)/3.0f); + setPointValue(equipment, "Input_kVAR", kW * 1.732f* pf); + setPointValue(equipment, "Output_kVAR", kW * 1.732f* pf); + + setPointValue(equipment, "Output_kW1", kW /3.0f); + setPointValue(equipment, "Output_kW2", kW /3.0f); + setPointValue(equipment, "Output_kW3", kW /3.0f); + + setPointValue(equipment, "Output_kWh", 1423.0f); + + + setPointValue(equipment, "Input_V_AB", 4800.0f); + setPointValue(equipment, "Input_V_AN", 2700.0f); + setPointValue(equipment, "Input_V_BC", 4800.0f); + setPointValue(equipment, "Input_V_BN", 2700.0f); + setPointValue(equipment, "Input_V_CA", 4800.0f); + setPointValue(equipment, "Input_V_CN", 2700.0f); + setPointValue(equipment, "Input_LL_Avg", 4800.0f); + setPointValue(equipment, "Input_LN_Avg", 2700.0f); + setPointValue(equipment, "Output_V_AB", 4800.0f); + setPointValue(equipment, "Output_V_AN", 2700.0f); + setPointValue(equipment, "Output_V_BC", 4800.0f); + setPointValue(equipment, "Output_V_BN", 2700.0f); + setPointValue(equipment, "Output_V_CA", 4800.0f); + setPointValue(equipment, "Output_V_CN", 2700.0f); + } else { + Serial.println("No breaker closed..."); + setPointValue(equipment, "Input_I1", 50.0f); + setPointValue(equipment, "Input_I2", 50.0f); + setPointValue(equipment, "Input_I3", 50.0f); + setPointValue(equipment, "Output_I1", 50.0f); + setPointValue(equipment, "Output_I2", 50.0f); + setPointValue(equipment, "Output_I3", 50.0f); + setPointValue(equipment, "Output_IG", 50.0f); + setPointValue(equipment, "Output_IN", 50.0f); + setPointValue(equipment, "Input_PF", 0.0f); + setPointValue(equipment, "Output_PF", 0.0f); + setPointValue(equipment, "Input_kW", 0.0f); + setPointValue(equipment, "Input_kVA", 0.0f); + setPointValue(equipment, "Output_kVA1", 0.0f); + setPointValue(equipment, "Output_kVA2", 0.0f); + setPointValue(equipment, "Output_kVA3", 0.0f); + setPointValue(equipment, "Input_kVAR", 0.0f); + setPointValue(equipment, "Output_kVAR", 0.0f); + setPointValue(equipment, "Output_kW1", 0.0f); + setPointValue(equipment, "Output_kW2", 0.0f); + setPointValue(equipment, "Output_kW3", 0.0f); + setPointValue(equipment, "Output_kWh", 1.0f); + setPointValue(equipment, "Input_V_AB", 4800.0f); + setPointValue(equipment, "Input_V_AN", 2700.0f); + setPointValue(equipment, "Input_V_BC", 4800.0f); + setPointValue(equipment, "Input_V_BN", 2700.0f); + setPointValue(equipment, "Input_V_CA", 4800.0f); + setPointValue(equipment, "Input_V_CN", 2700.0f); + setPointValue(equipment, "Input_LL_Avg", 4800.0f); + setPointValue(equipment, "Input_LN_Avg", 2700.0f); + setPointValue(equipment, "Output_V_AB", 10.0f); + setPointValue(equipment, "Output_V_AN", 10.0f); + setPointValue(equipment, "Output_V_BC", 10.0f); + setPointValue(equipment, "Output_V_BN", 10.0f); + setPointValue(equipment, "Output_V_CA", 10.0f); + setPointValue(equipment, "Output_V_CN", 10.0f); + + } + + + + // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; diff --git a/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Standby.cpp b/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Standby.cpp index 369b295..b35142e 100644 --- a/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Standby.cpp +++ b/src/EPMS/PDU/PDU_Maverick_Power_TCP/State_Standby.cpp @@ -79,6 +79,16 @@ template<> void StandbyState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Standby State..."); + setPointValue(equipment, "Input_V_AB", 0.0f); + setPointValue(equipment, "Input_V_AN", 0.0f); + setPointValue(equipment, "Input_V_BC", 0.0f); + setPointValue(equipment, "Input_V_BN", 0.0f); + setPointValue(equipment, "Input_V_CA", 0.0f); + setPointValue(equipment, "Input_V_CN", 0.0f); + setPointValue(equipment, "Input_LL_Avg", 0.0f); + setPointValue(equipment, "Input_LN_Avg", 0.0f); + setPointValue(equipment, "Output_PF", 0.0f); + } /** diff --git a/src/EPMS/PDU/PDU_Maverick_Power_TCP/config.h b/src/EPMS/PDU/PDU_Maverick_Power_TCP/config.h index 7b3428c..cd8b96f 100644 --- a/src/EPMS/PDU/PDU_Maverick_Power_TCP/config.h +++ b/src/EPMS/PDU/PDU_Maverick_Power_TCP/config.h @@ -21,11 +21,11 @@ * @{ */ #include - const char *ssid = "wifi_ssid"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 178); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ - IPAddress subnet(254, 254, 254, 0); /**< @brief The subnet mask. */ + const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 33, 181); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; #else @@ -46,8 +46,6 @@ ModbusRTU mb; #endif - - /** * @defgroup ModbusMapConfig Modbus Map Configuration * @brief Defines the Modbus register map and related parameters for the emulator. @@ -64,441 +62,189 @@ modbusMap mb_map[] = { // Write Registers (as Input Registers - 3X) //*************************************** {HR, 9, 0, "Px Ctrl"}, - {HR, 10, 0, "Px Rating"}, //Watts + {HR, 10, 0, "Px Rating"}, //Amps {HR, 11, 0, "Px Load"}, //%load - {COIL, 9, 0, "Px_CB0"}, - {COIL, 10, 0, "Px_CB1"}, - {COIL, 11, 0, "Px_CB2"}, - {COIL, 12, 0, "Px_CB3"}, - {COIL, 13, 0, "Px_CB4"}, - {COIL, 14, 0, "Px_CB5"}, - {COIL, 15, 0, "Px_CB6"}, - {COIL, 16, 0, "Px_CB7"}, - {COIL, 17, 0, "Px_CB8"}, + {HR, 19, 0, "Px_Input"}, + {HR, 20, 0, "Px_CB1"}, + {HR, 21, 0, "Px_CB2"}, + {HR, 22, 0, "Px_CB3"}, + {HR, 23, 0, "Px_CB4"}, + {HR, 24, 0, "Px_CB5"}, + {HR, 25, 0, "Px_CB6"}, + {HR, 26, 0, "Px_CB7"}, + {HR, 27, 0, "Px_CB8"}, + {HR, 28, 0, "Px_Output"}, - // System Status - {IR_FLOAT, 0, 0, "CB0_V1N" }, - {IR_FLOAT, 2, 0, "CB0_V2N" }, - {IR_FLOAT, 4, 0, "CB0_V3N" }, - {IR_FLOAT, 6, 0, "CB0_I1" }, - {IR_FLOAT, 8, 0, "CB0_I2" }, - {IR_FLOAT, 10, 0, "CB0_I3" }, - {IR_FLOAT, 12, 0, "CB0_L1KW" }, - {IR_FLOAT, 14, 0, "CB0_L2KW" }, - {IR_FLOAT, 16, 0, "CB0_L3KW" }, - {IR_FLOAT, 18, 0, "CB0_L1KVar" }, - {IR_FLOAT, 20, 0, "CB0_L2KVar" }, - {IR_FLOAT, 22, 0, "CB0_L3KVar" }, - {IR_FLOAT, 24, 0, "CB0_L1KVA" }, - {IR_FLOAT, 26, 0, "CB0_L2KVA" }, - {IR_FLOAT, 28, 0, "CB0_L3KVA" }, - {IR_FLOAT, 30, 0, "CB0_L1PF" }, - {IR_FLOAT, 32, 0, "CB0_L2PF" }, - {IR_FLOAT, 34, 0, "CB0_L3PF" }, - {IR_FLOAT, 36, 0, "CB0_V1THD" }, - {IR_FLOAT, 38, 0, "CB0_V2THD" }, - {IR_FLOAT, 40, 0, "CB0_V3THD" }, - {IR_FLOAT, 42, 0, "CB0_I1THD" }, - {IR_FLOAT, 44, 0, "CB0_I2THD" }, - {IR_FLOAT, 46, 0, "CB0_I3THD" }, - {IR_FLOAT, 48, 0, "CB0_I1Kfactor" }, - {IR_FLOAT, 50, 0, "CB0_I2Kfactor" }, - {IR_FLOAT, 52, 0, "CB0_I3Kfactor" }, - {IR_FLOAT, 54, 0, "CB0_I1TDD" }, - {IR_FLOAT, 56, 0, "CB0_I2TDD" }, - {IR_FLOAT, 58, 0, "CB0_I3TDD" }, - {IR_FLOAT, 60, 0, "CB0_V12" }, - {IR_FLOAT, 62, 0, "CB0_V23" }, - {IR_FLOAT, 64, 0, "CB0_V31" }, - {IR_FLOAT, 66, 0, "CB0_TotalKW" }, - {IR_FLOAT, 68, 0, "CB0_TotalKVar" }, - {IR_FLOAT, 70, 0, "CB0_TotalKVA" }, - {IR_FLOAT, 72, 0, "CB0_TotalPF" }, - {IR_FLOAT, 74, 0, "CB0_TotalPFLag" }, - {IR_FLOAT, 76, 0, "CB0_TotalPFLead" }, - {IR_FLOAT, 78, 0, "CB0_TotalKWImport" }, - {IR_FLOAT, 80, 0, "CB0_TotalKWExport" }, - {IR_FLOAT, 82, 0, "CB0_TotalKVarImport" }, - {IR_FLOAT, 84, 0, "CB0_TotalKVarExport" }, - {IR_FLOAT, 86, 0, "CB0_LN_Avg" }, - {IR_FLOAT, 88, 0, "CB0_LL_Avg" }, - {IR_FLOAT, 92, 0, "CB0_TotalKWh" }, + // PDU Input + {IR_LONG, 6, 0, "Input_I1" }, //0.01 + {IR_LONG, 8, 0, "Input_I2" }, //0.01 + {IR_LONG, 10, 0, "Input_I3" }, //0.01 + {IR_LONG, 70, 0, "Input_kVA" }, //0.001 + {IR_LONG, 68, 0, "Input_KVAR" }, //0.001 + {IR_LONG, 66, 0, "Input_kW" }, //0.001 + {IR_LONG, 66, 0, "Input_kWh" }, //0.1 + {IR_LONG, 72, 0, "Input_PF" }, //0.001 + {IR_LONG, 60, 0, "Input_V_AB" }, //0.1 + {IR_LONG, 0, 0, "Input_V_AN" }, //0.1 + {IR_LONG, 62, 0, "Input_V_BC" }, //0.1 + {IR_LONG, 2, 0, "Input_V_BN" }, //0.1 + {IR_LONG, 64, 0, "Input_V_CA" }, //0.1 + {IR_LONG, 4, 0, "Input_V_CN" }, //0.1 + {IR_LONG, 88, 0, "Input_LL_Avg" },//0.1 + {IR_LONG, 86, 0, "Input_LN_Avg" },//0.1 + + // Circuit Breaker 1 (CB1) + {IR_LONG, 106, 0, "CB1_I1" }, //0.01x + {IR_LONG, 108, 0, "CB1_I2" }, //0.01x + {IR_LONG, 110, 0, "CB1_I3" }, //0.01x + {IR_LONG, 170, 0, "CB1_kVA" }, //0.001x + {IR_LONG, 124, 0, "CB1_kVA1" }, //0.001x + {IR_LONG, 126, 0, "CB1_kVA2" }, //0.001x + {IR_LONG, 128, 0, "CB1_kVA3" }, //0.001x + {IR_LONG, 168, 0, "CB1_kVAR" }, //0.001x + {IR_LONG, 166, 0, "CB1_kW" }, //0.001x + {IR_LONG, 112, 0, "CB1_kW1" }, //0.001x + {IR_LONG, 114, 0, "CB1_kW2" }, //0.001x + {IR_LONG, 116, 0, "CB1_kW3" }, //0.001x + {IR_LONG, 1113, 0, "CB1_kWh" }, + {IR_LONG, 172, 0, "CB1_PF" }, //0.001x - // Circuit Breaker 1 (OB01) - {IR_FLOAT, 100, 0, "CB1_V1N" }, - {IR_FLOAT, 102, 0, "CB1_V2N" }, - {IR_FLOAT, 104, 0, "CB1_V3N" }, - {IR_FLOAT, 106, 0, "CB1_I1" }, - {IR_FLOAT, 108, 0, "CB1_I2" }, - {IR_FLOAT, 110, 0, "CB1_I3" }, - {IR_FLOAT, 112, 0, "CB1_L1KW" }, - {IR_FLOAT, 114, 0, "CB1_L2KW" }, - {IR_FLOAT, 116, 0, "CB1_L3KW" }, - {IR_FLOAT, 118, 0, "CB1_L1KVar" }, - {IR_FLOAT, 120, 0, "CB1_L2KVar" }, - {IR_FLOAT, 122, 0, "CB1_L3KVar" }, - {IR_FLOAT, 124, 0, "CB1_L1KVA" }, - {IR_FLOAT, 126, 0, "CB1_L2KVA" }, - {IR_FLOAT, 128, 0, "CB1_L3KVA" }, - {IR_FLOAT, 130, 0, "CB1_L1PF" }, - {IR_FLOAT, 132, 0, "CB1_L2PF" }, - {IR_FLOAT, 134, 0, "CB1_L3PF" }, - {IR_FLOAT, 136, 0, "CB1_V1THD" }, - {IR_FLOAT, 138, 0, "CB1_V2THD" }, - {IR_FLOAT, 140, 0, "CB1_V3THD" }, - {IR_FLOAT, 142, 0, "CB1_I1THD" }, - {IR_FLOAT, 144, 0, "CB1_I2THD" }, - {IR_FLOAT, 146, 0, "CB1_I3THD" }, - {IR_FLOAT, 148, 0, "CB1_I1Kfactor" }, - {IR_FLOAT, 150, 0, "CB1_I2Kfactor" }, - {IR_FLOAT, 152, 0, "CB1_I3Kfactor" }, - {IR_FLOAT, 154, 0, "CB1_I1TDD" }, - {IR_FLOAT, 156, 0, "CB1_I2TDD" }, - {IR_FLOAT, 158, 0, "CB1_I3TDD" }, - {IR_FLOAT, 160, 0, "CB1_V12" }, - {IR_FLOAT, 162, 0, "CB1_V23" }, - {IR_FLOAT, 164, 0, "CB1_V31" }, - {IR_FLOAT, 166, 0, "CB1_TotalKW" }, - {IR_FLOAT, 168, 0, "CB1_TotalKVar" }, - {IR_FLOAT, 170, 0, "CB1_TotalKVA" }, - {IR_FLOAT, 172, 0, "CB1_TotalPF" }, - {IR_FLOAT, 174, 0, "CB1_TotalPFLag" }, - {IR_FLOAT, 176, 0, "CB1_TotalPFLead" }, - {IR_FLOAT, 178, 0, "CB1_TotalKWImport" }, - {IR_FLOAT, 180, 0, "CB1_TotalKWExport" }, - {IR_FLOAT, 182, 0, "CB1_TotalKVarImport" }, - {IR_FLOAT, 184, 0, "CB1_TotalKVarExport" }, - {IR_FLOAT, 186, 0, "CB1_LN_Avg" }, - {IR_FLOAT, 188, 0, "CB1_LL_Avg" }, + // Circuit Breaker 2 (CB1) + {IR_LONG, 206, 0, "CB2_I1" }, //0.01x + {IR_LONG, 208, 0, "CB2_I2" }, //0.01x + {IR_LONG, 210, 0, "CB2_I3" }, //0.01x + {IR_LONG, 270, 0, "CB2_kVA" }, //0.001x + {IR_LONG, 224, 0, "CB2_kVA1" }, //0.001x + {IR_LONG, 226, 0, "CB2_kVA2" }, //0.001x + {IR_LONG, 228, 0, "CB2_kVA3" }, //0.001x + {IR_LONG, 268, 0, "CB2_kVAR" }, //0.001x + {IR_LONG, 266, 0, "CB2_kW" }, //0.001x + {IR_LONG, 212, 0, "CB2_kW1" }, //0.001x + {IR_LONG, 214, 0, "CB2_kW2" }, //0.001x + {IR_LONG, 216, 0, "CB2_kW3" }, //0.001x + {IR_LONG, 1168, 0, "CB2_kWh" }, + {IR_LONG, 272, 0, "CB2_PF" }, //0.001x - // Circuit Breaker 2 (OB02) - {IR_FLOAT, 200, 0, "CB2_V1N" }, - {IR_FLOAT, 202, 0, "CB2_V2N" }, - {IR_FLOAT, 204, 0, "CB2_V3N" }, - {IR_FLOAT, 206, 0, "CB2_I1" }, - {IR_FLOAT, 208, 0, "CB2_I2" }, - {IR_FLOAT, 210, 0, "CB2_I3" }, - {IR_FLOAT, 212, 0, "CB2_L1KW" }, - {IR_FLOAT, 214, 0, "CB2_L2KW" }, - {IR_FLOAT, 216, 0, "CB2_L3KW" }, - {IR_FLOAT, 218, 0, "CB2_L1KVar" }, - {IR_FLOAT, 220, 0, "CB2_L2KVar" }, - {IR_FLOAT, 222, 0, "CB2_L3KVar" }, - {IR_FLOAT, 224, 0, "CB2_L1KVA" }, - {IR_FLOAT, 226, 0, "CB2_L2KVA" }, - {IR_FLOAT, 228, 0, "CB2_L3KVA" }, - {IR_FLOAT, 230, 0, "CB2_L1PF" }, - {IR_FLOAT, 232, 0, "CB2_L2PF" }, - {IR_FLOAT, 234, 0, "CB2_L3PF" }, - {IR_FLOAT, 236, 0, "CB2_V1THD" }, - {IR_FLOAT, 238, 0, "CB2_V2THD" }, - {IR_FLOAT, 240, 0, "CB2_V3THD" }, - {IR_FLOAT, 242, 0, "CB2_I1THD" }, - {IR_FLOAT, 244, 0, "CB2_I2THD" }, - {IR_FLOAT, 246, 0, "CB2_I3THD" }, - {IR_FLOAT, 248, 0, "CB2_I1Kfactor" }, - {IR_FLOAT, 250, 0, "CB2_I2Kfactor" }, - {IR_FLOAT, 252, 0, "CB2_I3Kfactor" }, - {IR_FLOAT, 254, 0, "CB2_I1TDD" }, - {IR_FLOAT, 256, 0, "CB2_I2TDD" }, - {IR_FLOAT, 258, 0, "CB2_I3TDD" }, - {IR_FLOAT, 260, 0, "CB2_V12" }, - {IR_FLOAT, 262, 0, "CB2_V23" }, - {IR_FLOAT, 264, 0, "CB2_V31" }, - {IR_FLOAT, 266, 0, "CB2_TotalKW" }, - {IR_FLOAT, 268, 0, "CB2_TotalKVar" }, - {IR_FLOAT, 270, 0, "CB2_TotalKVA" }, - {IR_FLOAT, 272, 0, "CB2_TotalPF" }, - {IR_FLOAT, 274, 0, "CB2_TotalPFLag" }, - {IR_FLOAT, 276, 0, "CB2_TotalPFLead" }, - {IR_FLOAT, 278, 0, "CB2_TotalKWImport" }, - {IR_FLOAT, 280, 0, "CB2_TotalKWExport" }, - {IR_FLOAT, 282, 0, "CB2_TotalKVarImport" }, - {IR_FLOAT, 284, 0, "CB2_TotalKVarExport" }, - {IR_FLOAT, 286, 0, "CB2_LN_Avg" }, - {IR_FLOAT, 288, 0, "CB2_LL_Avg" }, + // Circuit Breaker 3 (CB1) + {IR_LONG, 306, 0, "CB3_I1" }, //0.01x + {IR_LONG, 308, 0, "CB3_I2" }, //0.01x + {IR_LONG, 310, 0, "CB3_I3" }, //0.01x + {IR_LONG, 370, 0, "CB3_kVA" }, //0.001x + {IR_LONG, 324, 0, "CB3_kVA1" }, //0.001x + {IR_LONG, 326, 0, "CB3_kVA2" }, //0.001x + {IR_LONG, 328, 0, "CB3_kVA3" }, //0.001x + {IR_LONG, 368, 0, "CB3_kVAR" }, //0.001x + {IR_LONG, 366, 0, "CB3_kW" }, //0.001x + {IR_LONG, 312, 0, "CB3_kW1" }, //0.001x + {IR_LONG, 314, 0, "CB3_kW2" }, //0.001x + {IR_LONG, 316, 0, "CB3_kW3" }, //0.001x + {IR_LONG, 1223, 0, "CB3_kWh" }, + {IR_LONG, 372, 0, "CB3_PF" }, //0.001x - // Circuit Breaker 3 (OB03) - {IR_FLOAT, 300, 0, "CB3_V1N" }, - {IR_FLOAT, 302, 0, "CB3_V2N" }, - {IR_FLOAT, 304, 0, "CB3_V3N" }, - {IR_FLOAT, 306, 0, "CB3_I1" }, - {IR_FLOAT, 308, 0, "CB3_I2" }, - {IR_FLOAT, 310, 0, "CB3_I3" }, - {IR_FLOAT, 312, 0, "CB3_L1KW" }, - {IR_FLOAT, 314, 0, "CB3_L2KW" }, - {IR_FLOAT, 316, 0, "CB3_L3KW" }, - {IR_FLOAT, 318, 0, "CB3_L1KVar" }, - {IR_FLOAT, 320, 0, "CB3_L2KVar" }, - {IR_FLOAT, 322, 0, "CB3_L3KVar" }, - {IR_FLOAT, 324, 0, "CB3_L1KVA" }, - {IR_FLOAT, 326, 0, "CB3_L2KVA" }, - {IR_FLOAT, 328, 0, "CB3_L3KVA" }, - {IR_FLOAT, 330, 0, "CB3_L1PF" }, - {IR_FLOAT, 332, 0, "CB3_L2PF" }, - {IR_FLOAT, 334, 0, "CB3_L3PF" }, - {IR_FLOAT, 336, 0, "CB3_V1THD" }, - {IR_FLOAT, 338, 0, "CB3_V2THD" }, - {IR_FLOAT, 340, 0, "CB3_V3THD" }, - {IR_FLOAT, 342, 0, "CB3_I1THD" }, - {IR_FLOAT, 344, 0, "CB3_I2THD" }, - {IR_FLOAT, 346, 0, "CB3_I3THD" }, - {IR_FLOAT, 348, 0, "CB3_I1Kfactor" }, - {IR_FLOAT, 350, 0, "CB3_I2Kfactor" }, - {IR_FLOAT, 352, 0, "CB3_I3Kfactor" }, - {IR_FLOAT, 354, 0, "CB3_I1TDD" }, - {IR_FLOAT, 356, 0, "CB3_I2TDD" }, - {IR_FLOAT, 358, 0, "CB3_I3TDD" }, - {IR_FLOAT, 360, 0, "CB3_V12" }, - {IR_FLOAT, 362, 0, "CB3_V23" }, - {IR_FLOAT, 364, 0, "CB3_V31" }, - {IR_FLOAT, 366, 0, "CB3_TotalKW" }, - {IR_FLOAT, 368, 0, "CB3_TotalKVar" }, - {IR_FLOAT, 370, 0, "CB3_TotalKVA" }, - {IR_FLOAT, 372, 0, "CB3_TotalPF" }, - {IR_FLOAT, 374, 0, "CB3_TotalPFLag" }, - {IR_FLOAT, 376, 0, "CB3_TotalPFLead" }, - {IR_FLOAT, 378, 0, "CB3_TotalKWImport" }, - {IR_FLOAT, 380, 0, "CB3_TotalKWExport" }, - {IR_FLOAT, 382, 0, "CB3_TotalKVarImport" }, - {IR_FLOAT, 384, 0, "CB3_TotalKVarExport" }, - {IR_FLOAT, 386, 0, "CB3_LN_Avg" }, - {IR_FLOAT, 388, 0, "CB3_LL_Avg" }, + // Circuit Breaker 4 (CB1) + {IR_LONG, 406, 0, "CB4_I1" }, //0.01x + {IR_LONG, 408, 0, "CB4_I2" }, //0.01x + {IR_LONG, 410, 0, "CB4_I3" }, //0.01x + {IR_LONG, 470, 0, "CB4_kVA" }, //0.001x + {IR_LONG, 424, 0, "CB4_kVA1" }, //0.001x + {IR_LONG, 426, 0, "CB4_kVA2" }, //0.001x + {IR_LONG, 428, 0, "CB4_kVA3" }, //0.001x + {IR_LONG, 468, 0, "CB4_kVAR" }, //0.001x + {IR_LONG, 466, 0, "CB4_kW" }, //0.001x + {IR_LONG, 412, 0, "CB4_kW1" }, //0.001x + {IR_LONG, 414, 0, "CB4_kW2" }, //0.001x + {IR_LONG, 416, 0, "CB4_kW3" }, //0.001x + {IR_LONG, 1278, 0, "CB4_kWh" }, + {IR_LONG, 472, 0, "CB4_PF" }, //0.001x - // Circuit Breaker 4 (OB04) - {IR_FLOAT, 400, 0, "CB4_V1N" }, - {IR_FLOAT, 402, 0, "CB4_V2N" }, - {IR_FLOAT, 404, 0, "CB4_V3N" }, - {IR_FLOAT, 406, 0, "CB4_I1" }, - {IR_FLOAT, 408, 0, "CB4_I2" }, - {IR_FLOAT, 410, 0, "CB4_I3" }, - {IR_FLOAT, 412, 0, "CB4_L1KW" }, - {IR_FLOAT, 414, 0, "CB4_L2KW" }, - {IR_FLOAT, 416, 0, "CB4_L3KW" }, - {IR_FLOAT, 418, 0, "CB4_L1KVar" }, - {IR_FLOAT, 420, 0, "CB4_L2KVar" }, - {IR_FLOAT, 422, 0, "CB4_L3KVar" }, - {IR_FLOAT, 424, 0, "CB4_L1KVA" }, - {IR_FLOAT, 426, 0, "CB4_L2KVA" }, - {IR_FLOAT, 428, 0, "CB4_L3KVA" }, - {IR_FLOAT, 430, 0, "CB4_L1PF" }, - {IR_FLOAT, 432, 0, "CB4_L2PF" }, - {IR_FLOAT, 434, 0, "CB4_L3PF" }, - {IR_FLOAT, 436, 0, "CB4_V1THD" }, - {IR_FLOAT, 438, 0, "CB4_V2THD" }, - {IR_FLOAT, 440, 0, "CB4_V3THD" }, - {IR_FLOAT, 442, 0, "CB4_I1THD" }, - {IR_FLOAT, 444, 0, "CB4_I2THD" }, - {IR_FLOAT, 446, 0, "CB4_I3THD" }, - {IR_FLOAT, 448, 0, "CB4_I1Kfactor" }, - {IR_FLOAT, 450, 0, "CB4_I2Kfactor" }, - {IR_FLOAT, 452, 0, "CB4_I3Kfactor" }, - {IR_FLOAT, 454, 0, "CB4_I1TDD" }, - {IR_FLOAT, 456, 0, "CB4_I2TDD" }, - {IR_FLOAT, 458, 0, "CB4_I3TDD" }, - {IR_FLOAT, 460, 0, "CB4_V12" }, - {IR_FLOAT, 462, 0, "CB4_V23" }, - {IR_FLOAT, 464, 0, "CB4_V31" }, - {IR_FLOAT, 466, 0, "CB4_TotalKW" }, - {IR_FLOAT, 468, 0, "CB4_TotalKVar" }, - {IR_FLOAT, 470, 0, "CB4_TotalKVA" }, - {IR_FLOAT, 472, 0, "CB4_TotalPF" }, - {IR_FLOAT, 474, 0, "CB4_TotalPFLag" }, - {IR_FLOAT, 476, 0, "CB4_TotalPFLead" }, - {IR_FLOAT, 478, 0, "CB4_TotalKWImport" }, - {IR_FLOAT, 480, 0, "CB4_TotalKWExport" }, - {IR_FLOAT, 482, 0, "CB4_TotalKVarImport" }, - {IR_FLOAT, 484, 0, "CB4_TotalKVarExport" }, - {IR_FLOAT, 486, 0, "CB4_LN_Avg" }, - {IR_FLOAT, 488, 0, "CB4_LL_Avg" }, + // Circuit Breaker 5 (CB1) + {IR_LONG, 506, 0, "CB5_I1" }, //0.01x + {IR_LONG, 508, 0, "CB5_I2" }, //0.01x + {IR_LONG, 510, 0, "CB5_I3" }, //0.01x + {IR_LONG, 570, 0, "CB5_kVA" }, //0.001x + {IR_LONG, 524, 0, "CB5_kVA1" }, //0.001x + {IR_LONG, 526, 0, "CB5_kVA2" }, //0.001x + {IR_LONG, 528, 0, "CB5_kVA3" }, //0.001x + {IR_LONG, 568, 0, "CB5_kVAR" }, //0.001x + {IR_LONG, 566, 0, "CB5_kW" }, //0.001x + {IR_LONG, 512, 0, "CB5_kW1" }, //0.001x + {IR_LONG, 514, 0, "CB5_kW2" }, //0.001x + {IR_LONG, 516, 0, "CB5_kW3" }, //0.001x + {IR_LONG, 1333, 0, "CB5_kWh" }, + {IR_LONG, 572, 0, "CB5_PF" }, //0.001x - // Circuit Breaker 5 (OB05) - {IR_FLOAT, 500, 0, "CB5_V1N" }, - {IR_FLOAT, 502, 0, "CB5_V2N" }, - {IR_FLOAT, 504, 0, "CB5_V3N" }, - {IR_FLOAT, 506, 0, "CB5_I1" }, - {IR_FLOAT, 508, 0, "CB5_I2" }, - {IR_FLOAT, 510, 0, "CB5_I3" }, - {IR_FLOAT, 512, 0, "CB5_L1KW" }, - {IR_FLOAT, 514, 0, "CB5_L2KW" }, - {IR_FLOAT, 516, 0, "CB5_L3KW" }, - {IR_FLOAT, 518, 0, "CB5_L1KVar" }, - {IR_FLOAT, 520, 0, "CB5_L2KVar" }, - {IR_FLOAT, 522, 0, "CB5_L3KVar" }, - {IR_FLOAT, 524, 0, "CB5_L1KVA" }, - {IR_FLOAT, 526, 0, "CB5_L2KVA" }, - {IR_FLOAT, 528, 0, "CB5_L3KVA" }, - {IR_FLOAT, 530, 0, "CB5_L1PF" }, - {IR_FLOAT, 532, 0, "CB5_L2PF" }, - {IR_FLOAT, 534, 0, "CB5_L3PF" }, - {IR_FLOAT, 536, 0, "CB5_V1THD" }, - {IR_FLOAT, 538, 0, "CB5_V2THD" }, - {IR_FLOAT, 540, 0, "CB5_V3THD" }, - {IR_FLOAT, 542, 0, "CB5_I1THD" }, - {IR_FLOAT, 544, 0, "CB5_I2THD" }, - {IR_FLOAT, 546, 0, "CB5_I3THD" }, - {IR_FLOAT, 548, 0, "CB5_I1Kfactor" }, - {IR_FLOAT, 550, 0, "CB5_I2Kfactor" }, - {IR_FLOAT, 552, 0, "CB5_I3Kfactor" }, - {IR_FLOAT, 554, 0, "CB5_I1TDD" }, - {IR_FLOAT, 556, 0, "CB5_I2TDD" }, - {IR_FLOAT, 558, 0, "CB5_I3TDD" }, - {IR_FLOAT, 560, 0, "CB5_V12" }, - {IR_FLOAT, 562, 0, "CB5_V23" }, - {IR_FLOAT, 564, 0, "CB5_V31" }, - {IR_FLOAT, 566, 0, "CB5_TotalKW" }, - {IR_FLOAT, 568, 0, "CB5_TotalKVar" }, - {IR_FLOAT, 570, 0, "CB5_TotalKVA" }, - {IR_FLOAT, 572, 0, "CB5_TotalPF" }, - {IR_FLOAT, 574, 0, "CB5_TotalPFLag" }, - {IR_FLOAT, 576, 0, "CB5_TotalPFLead" }, - {IR_FLOAT, 578, 0, "CB5_TotalKWImport" }, - {IR_FLOAT, 580, 0, "CB5_TotalKWExport" }, - {IR_FLOAT, 582, 0, "CB5_TotalKVarImport" }, - {IR_FLOAT, 584, 0, "CB5_TotalKVarExport" }, - {IR_FLOAT, 586, 0, "CB5_LN_Avg" }, - {IR_FLOAT, 588, 0, "CB5_LL_Avg" }, + // Circuit Breaker 6 (CB1) + {IR_LONG, 606, 0, "CB6_I1" }, //0.01x + {IR_LONG, 608, 0, "CB6_I2" }, //0.01x + {IR_LONG, 610, 0, "CB6_I3" }, //0.01x + {IR_LONG, 670, 0, "CB6_kVA" }, //0.001x + {IR_LONG, 624, 0, "CB6_kVA1" }, //0.001x + {IR_LONG, 626, 0, "CB6_kVA2" }, //0.001x + {IR_LONG, 628, 0, "CB6_kVA3" }, //0.001x + {IR_LONG, 668, 0, "CB6_kVAR" }, //0.001x + {IR_LONG, 666, 0, "CB6_kW" }, //0.001x + {IR_LONG, 612, 0, "CB6_kW1" }, //0.001x + {IR_LONG, 614, 0, "CB6_kW2" }, //0.001x + {IR_LONG, 616, 0, "CB6_kW3" }, //0.001x + {IR_LONG, 1388, 0, "CB6_kWh" }, + {IR_LONG, 672, 0, "CB6_PF" }, //0.001x - // Circuit Breaker 6 (OB06) - {IR_FLOAT, 600, 0, "CB6_V1N" }, - {IR_FLOAT, 602, 0, "CB6_V2N" }, - {IR_FLOAT, 604, 0, "CB6_V3N" }, - {IR_FLOAT, 606, 0, "CB6_I1" }, - {IR_FLOAT, 608, 0, "CB6_I2" }, - {IR_FLOAT, 610, 0, "CB6_I3" }, - {IR_FLOAT, 612, 0, "CB6_L1KW" }, - {IR_FLOAT, 614, 0, "CB6_L2KW" }, - {IR_FLOAT, 616, 0, "CB6_L3KW" }, - {IR_FLOAT, 618, 0, "CB6_L1KVar" }, - {IR_FLOAT, 620, 0, "CB6_L2KVar" }, - {IR_FLOAT, 622, 0, "CB6_L3KVar" }, - {IR_FLOAT, 624, 0, "CB6_L1KVA" }, - {IR_FLOAT, 626, 0, "CB6_L2KVA" }, - {IR_FLOAT, 628, 0, "CB6_L3KVA" }, - {IR_FLOAT, 630, 0, "CB6_L1PF" }, - {IR_FLOAT, 632, 0, "CB6_L2PF" }, - {IR_FLOAT, 634, 0, "CB6_L3PF" }, - {IR_FLOAT, 636, 0, "CB6_V1THD" }, - {IR_FLOAT, 638, 0, "CB6_V2THD" }, - {IR_FLOAT, 640, 0, "CB6_V3THD" }, - {IR_FLOAT, 642, 0, "CB6_I1THD" }, - {IR_FLOAT, 644, 0, "CB6_I2THD" }, - {IR_FLOAT, 646, 0, "CB6_I3THD" }, - {IR_FLOAT, 648, 0, "CB6_I1Kfactor" }, - {IR_FLOAT, 650, 0, "CB6_I2Kfactor" }, - {IR_FLOAT, 652, 0, "CB6_I3Kfactor" }, - {IR_FLOAT, 654, 0, "CB6_I1TDD" }, - {IR_FLOAT, 656, 0, "CB6_I2TDD" }, - {IR_FLOAT, 658, 0, "CB6_I3TDD" }, - {IR_FLOAT, 660, 0, "CB6_V12" }, - {IR_FLOAT, 662, 0, "CB6_V23" }, - {IR_FLOAT, 664, 0, "CB6_V31" }, - {IR_FLOAT, 666, 0, "CB6_TotalKW" }, - {IR_FLOAT, 668, 0, "CB6_TotalKVar" }, - {IR_FLOAT, 670, 0, "CB6_TotalKVA" }, - {IR_FLOAT, 672, 0, "CB6_TotalPF" }, - {IR_FLOAT, 674, 0, "CB6_TotalPFLag" }, - {IR_FLOAT, 676, 0, "CB6_TotalPFLead" }, - {IR_FLOAT, 678, 0, "CB6_TotalKWImport" }, - {IR_FLOAT, 680, 0, "CB6_TotalKWExport" }, - {IR_FLOAT, 682, 0, "CB6_TotalKVarImport" }, - {IR_FLOAT, 684, 0, "CB6_TotalKVarExport" }, - {IR_FLOAT, 686, 0, "CB6_LN_Avg" }, - {IR_FLOAT, 688, 0, "CB6_LL_Avg" }, - - // Circuit Breaker 7 (OB07) - {IR_FLOAT, 700, 0, "CB7_V1N" }, - {IR_FLOAT, 702, 0, "CB7_V2N" }, - {IR_FLOAT, 704, 0, "CB7_V3N" }, - {IR_FLOAT, 706, 0, "CB7_I1" }, - {IR_FLOAT, 708, 0, "CB7_I2" }, - {IR_FLOAT, 710, 0, "CB7_I3" }, - {IR_FLOAT, 712, 0, "CB7_L1KW" }, - {IR_FLOAT, 714, 0, "CB7_L2KW" }, - {IR_FLOAT, 716, 0, "CB7_L3KW" }, - {IR_FLOAT, 718, 0, "CB7_L1KVar" }, - {IR_FLOAT, 720, 0, "CB7_L2KVar" }, - {IR_FLOAT, 722, 0, "CB7_L3KVar" }, - {IR_FLOAT, 724, 0, "CB7_L1KVA" }, - {IR_FLOAT, 726, 0, "CB7_L2KVA" }, - {IR_FLOAT, 728, 0, "CB7_L3KVA" }, - {IR_FLOAT, 730, 0, "CB7_L1PF" }, - {IR_FLOAT, 732, 0, "CB7_L2PF" }, - {IR_FLOAT, 734, 0, "CB7_L3PF" }, - {IR_FLOAT, 736, 0, "CB7_V1THD" }, - {IR_FLOAT, 738, 0, "CB7_V2THD" }, - {IR_FLOAT, 740, 0, "CB7_V3THD" }, - {IR_FLOAT, 742, 0, "CB7_I1THD" }, - {IR_FLOAT, 744, 0, "CB7_I2THD" }, - {IR_FLOAT, 746, 0, "CB7_I3THD" }, - {IR_FLOAT, 748, 0, "CB7_I1Kfactor" }, - {IR_FLOAT, 750, 0, "CB7_I2Kfactor" }, - {IR_FLOAT, 752, 0, "CB7_I3Kfactor" }, - {IR_FLOAT, 754, 0, "CB7_I1TDD" }, - {IR_FLOAT, 756, 0, "CB7_I2TDD" }, - {IR_FLOAT, 758, 0, "CB7_I3TDD" }, - {IR_FLOAT, 760, 0, "CB7_V12" }, - {IR_FLOAT, 762, 0, "CB7_V23" }, - {IR_FLOAT, 764, 0, "CB7_V31" }, - {IR_FLOAT, 766, 0, "CB7_TotalKW" }, - {IR_FLOAT, 768, 0, "CB7_TotalKVar" }, - {IR_FLOAT, 770, 0, "CB7_TotalKVA" }, - {IR_FLOAT, 772, 0, "CB7_TotalPF" }, - {IR_FLOAT, 774, 0, "CB7_TotalPFLag" }, - {IR_FLOAT, 776, 0, "CB7_TotalPFLead" }, - {IR_FLOAT, 778, 0, "CB7_TotalKWImport" }, - {IR_FLOAT, 780, 0, "CB7_TotalKWExport" }, - {IR_FLOAT, 782, 0, "CB7_TotalKVarImport" }, - {IR_FLOAT, 784, 0, "CB7_TotalKVarExport" }, - {IR_FLOAT, 786, 0, "CB7_LN_Avg" }, - {IR_FLOAT, 788, 0, "CB7_LL_Avg" }, - - // Circuit Breaker 8 (OB08) - {IR_FLOAT, 800, 0, "CB8_V1N" }, - {IR_FLOAT, 802, 0, "CB8_V2N" }, - {IR_FLOAT, 804, 0, "CB8_V3N" }, - {IR_FLOAT, 806, 0, "CB8_I1" }, - {IR_FLOAT, 808, 0, "CB8_I2" }, - {IR_FLOAT, 810, 0, "CB8_I3" }, - {IR_FLOAT, 812, 0, "CB8_L1KW" }, - {IR_FLOAT, 814, 0, "CB8_L2KW" }, - {IR_FLOAT, 816, 0, "CB8_L3KW" }, - {IR_FLOAT, 818, 0, "CB8_L1KVar" }, - {IR_FLOAT, 820, 0, "CB8_L2KVar" }, - {IR_FLOAT, 822, 0, "CB8_L3KVar" }, - {IR_FLOAT, 824, 0, "CB8_L1KVA" }, - {IR_FLOAT, 826, 0, "CB8_L2KVA" }, - {IR_FLOAT, 828, 0, "CB8_L3KVA" }, - {IR_FLOAT, 830, 0, "CB8_L1PF" }, - {IR_FLOAT, 832, 0, "CB8_L2PF" }, - {IR_FLOAT, 834, 0, "CB8_L3PF" }, - {IR_FLOAT, 836, 0, "CB8_V1THD" }, - {IR_FLOAT, 838, 0, "CB8_V2THD" }, - {IR_FLOAT, 840, 0, "CB8_V3THD" }, - {IR_FLOAT, 842, 0, "CB8_I1THD" }, - {IR_FLOAT, 844, 0, "CB8_I2THD" }, - {IR_FLOAT, 846, 0, "CB8_I3THD" }, - {IR_FLOAT, 848, 0, "CB8_I1Kfactor" }, - {IR_FLOAT, 850, 0, "CB8_I2Kfactor" }, - {IR_FLOAT, 852, 0, "CB8_I3Kfactor" }, - {IR_FLOAT, 854, 0, "CB8_I1TDD" }, - {IR_FLOAT, 856, 0, "CB8_I2TDD" }, - {IR_FLOAT, 858, 0, "CB8_I3TDD" }, - {IR_FLOAT, 860, 0, "CB8_V12" }, - {IR_FLOAT, 862, 0, "CB8_V23" }, - {IR_FLOAT, 864, 0, "CB8_V31" }, - {IR_FLOAT, 866, 0, "CB8_TotalKW" }, - {IR_FLOAT, 868, 0, "CB8_TotalKVar" }, - {IR_FLOAT, 870, 0, "CB8_TotalKVA" }, - {IR_FLOAT, 872, 0, "CB8_TotalPF" }, - {IR_FLOAT, 874, 0, "CB8_TotalPFLag" }, - {IR_FLOAT, 876, 0, "CB8_TotalPFLead" }, - {IR_FLOAT, 878, 0, "CB8_TotalKWImport" }, - {IR_FLOAT, 880, 0, "CB8_TotalKWExport" }, - {IR_FLOAT, 882, 0, "CB8_TotalKVarImport" }, - {IR_FLOAT, 884, 0, "CB8_TotalKVarExport" }, - {IR_FLOAT, 886, 0, "CB8_LN_Avg" }, - {IR_FLOAT, 888, 0, "CB8_LL_Avg" }, + // Circuit Breaker 7 (CB1) + {IR_LONG, 706, 0, "CB7_I1" }, //0.01x + {IR_LONG, 708, 0, "CB7_I2" }, //0.01x + {IR_LONG, 710, 0, "CB7_I3" }, //0.01x + {IR_LONG, 770, 0, "CB7_kVA" }, //0.001x + {IR_LONG, 724, 0, "CB7_kVA1" }, //0.001x + {IR_LONG, 726, 0, "CB7_kVA2" }, //0.001x + {IR_LONG, 728, 0, "CB7_kVA3" }, //0.001x + {IR_LONG, 768, 0, "CB7_kVAR" }, //0.001x + {IR_LONG, 766, 0, "CB7_kW" }, //0.001x + {IR_LONG, 712, 0, "CB7_kW1" }, //0.001x + {IR_LONG, 714, 0, "CB7_kW2" }, //0.001x + {IR_LONG, 716, 0, "CB7_kW3" }, //0.001x + {IR_LONG, 1443, 0, "CB7_kWh" }, + {IR_LONG, 772, 0, "CB7_PF" }, //0.001x + + // Circuit Breaker 8 (CB1) + {IR_LONG, 806, 0, "CB8_I1" }, //0.01x + {IR_LONG, 808, 0, "CB8_I2" }, //0.01x + {IR_LONG, 810, 0, "CB8_I3" }, //0.01x + {IR_LONG, 870, 0, "CB8_kVA" }, //0.001x + {IR_LONG, 824, 0, "CB8_kVA1" }, //0.001x + {IR_LONG, 826, 0, "CB8_kVA2" }, //0.001x + {IR_LONG, 828, 0, "CB8_kVA3" }, //0.001x + {IR_LONG, 868, 0, "CB8_kVAR" }, //0.001x + {IR_LONG, 866, 0, "CB8_kW" }, //0.001x + {IR_LONG, 812, 0, "CB8_kW1" }, //0.001x + {IR_LONG, 814, 0, "CB8_kW2" }, //0.001x + {IR_LONG, 816, 0, "CB8_kW3" }, //0.001x + {IR_LONG, 1498, 0, "CB8_kWh" }, + {IR_LONG, 872, 0, "CB8_PF" }, //0.001x + + // PDU Output + {IR_LONG, 906, 0, "Output_I1" }, //0.01x + {IR_LONG, 908, 0, "Output_I2" }, + {IR_LONG, 910, 0, "Output_I3" }, + {IR_LONG, 1068, 0, "Output_IG" }, + {IR_LONG, 1066, 0, "Output_IN" }, + {IR_LONG, 924, 0, "Output_kVA1" }, //0.001 + {IR_LONG, 926, 0, "Output_kVA2" }, + {IR_LONG, 928, 0, "Output_kVA3" }, + {IR_LONG, 968, 0, "Output_kVAR" }, //0.001 + {IR_LONG, 912, 0, "Output_kW1" }, //0.001x + {IR_LONG, 914, 0, "Output_kW2" }, + {IR_LONG, 916, 0, "Output_kW3" }, + {IR_LONG, 1086, 0, "Output_kWh" }, + {IR_LONG, 1091, 0, "Output_PF" }, //0.001 + {IR_LONG, 960, 0, "Output_V_AB" }, + {IR_LONG, 900, 0, "Output_V_AN" }, //0.01x + {IR_LONG, 962, 0, "Output_V_BC" }, + {IR_LONG, 902, 0, "Output_V_BN" }, + {IR_LONG, 964, 0, "Output_V_CA" }, + {IR_LONG, 904, 0, "Output_V_CN" }, + + {IR, 1550, 0, "CB_Status" }, + {IR, 1551, 0, "CB_Tripped" }, }; //Size of modbus map used in FOR cycles, automatically calculated. diff --git a/src/EPMS/PQM/PQM_PM9000_TCP/State_Running.cpp b/src/EPMS/PQM/PQM_PM9000_TCP/State_Running.cpp index e60e869..8e3480f 100644 --- a/src/EPMS/PQM/PQM_PM9000_TCP/State_Running.cpp +++ b/src/EPMS/PQM/PQM_PM9000_TCP/State_Running.cpp @@ -43,7 +43,7 @@ RunningState::RunningState() { addStrategy("Volts CA", new SingleValueStrategy(480.0F, 5.0f, 1000)); addStrategy("PF", new SingleValueStrategy(0.9f, 0.05f, 1000)); - + addStrategy("Frequency", new SingleValueStrategy(60.0f, 0.7f, 1000)); addStrategy("Amps A", new SingleValueStrategy(1.0f, 10.0f, 1000)); addStrategy("Amps B", new SingleValueStrategy(1.0f, 10.0f, 1000)); addStrategy("Amps C", new SingleValueStrategy(1.0f, 10.0f, 1000)); diff --git a/src/EPMS/PQM/PQM_PM9000_TCP/State_Standby.cpp b/src/EPMS/PQM/PQM_PM9000_TCP/State_Standby.cpp index 0600853..65ab9ca 100644 --- a/src/EPMS/PQM/PQM_PM9000_TCP/State_Standby.cpp +++ b/src/EPMS/PQM/PQM_PM9000_TCP/State_Standby.cpp @@ -87,6 +87,7 @@ void StandbyState::enterState(Equipment* equipment) { setPointValue(equipment, "Amps C", 0.0f); setPointValue(equipment, "kW", 0.0f); setPointValue(equipment, "kVA", 0.0f); + setPointValue(equipment, "Frequency", 0.0f); } /** diff --git a/src/EPMS/PQM/PQM_PM9000_TCP/config.h b/src/EPMS/PQM/PQM_PM9000_TCP/config.h index f323a0c..8886755 100644 --- a/src/EPMS/PQM/PQM_PM9000_TCP/config.h +++ b/src/EPMS/PQM/PQM_PM9000_TCP/config.h @@ -23,8 +23,8 @@ #include const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(172, 17, 30, 241); /**< @brief The static IP address for the device. */ - IPAddress gateway(172, 17, 30, 1); /**< @brief The gateway IP address. */ + IPAddress local_IP(172, 17, 33, 174); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; diff --git a/src/EPMS/RPP/RPP_Cortex_TCP/README.md b/src/EPMS/RPP/RPP_Cortex_TCP/README.md new file mode 100644 index 0000000..355156f --- /dev/null +++ b/src/EPMS/RPP/RPP_Cortex_TCP/README.md @@ -0,0 +1,33 @@ +# EQUIPMENT_TYPE MANUFACTURER MODEL TCP + +## Brief Introduction +Equipment specifc details that make it different from other devices + +## List of Equipmentt +This cofiguration has been used for these models: +* **Model**: 09-15-22 +* **Model**: 09-15-23 +* **Model**: 09-15-25 + +## Hardware Prerequisites + +The code is written for an ESP8266/ESP32-style microcontroller with WiFi capabilities. +* **Microcontroller**: [Firebeetle 2 ESP32.](https://www.dfrobot.com/product-2231.html) + +--- + +## States and Strategies +Provide a brief description of what variables and strategies were used in this configuraiton + +### Standby State +* **Equipment running**: set to 0 +* **Common Alarm**: set to 0 +* **SAT temperature**: set to 85 + +### Running State +* **Equipment running**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 65 deg setpoint + +### Fail State +* **Commong Alarm**: set to 1 +* **SAT temperature**: **Ramp Strategy** set to 105 deg setpointset diff --git a/src/EPMS/RPP/RPP_Cortex_TCP/State_Fail.cpp b/src/EPMS/RPP/RPP_Cortex_TCP/State_Fail.cpp new file mode 100644 index 0000000..8bc0385 --- /dev/null +++ b/src/EPMS/RPP/RPP_Cortex_TCP/State_Fail.cpp @@ -0,0 +1,81 @@ +/** + * @file State_Fail.cpp + * @brief Implementation of the FailState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the FailState, which defines + * the behavior of the equipment when it has entered a fault condition. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new FailState object with a list of active alarms. + * + * This constructor receives a list of alarm descriptions and creates strategies + * to set the corresponding Modbus points to a value of 1, indicating an + * active alarm. It also initializes a PID strategy for the 'CW Valve Position' + * to maintain its state during the fault. + * @param activeAlarms A vector of strings, where each string is the + * description of a Modbus point to be set as an active alarm. + */ +template<> +FailState::FailState(const std::vector& activeAlarms) { + // Simulate a failure: set common alarm and a specific fan alarm. + + +} + +/** + * @brief Executes the fail state's logic for one update cycle. + * + * This method checks the "Alarm Reset" Modbus point for a command to + * transition back to Standby, which would typically happen after a fault + * is cleared by a user. If no transition is requested, it continues to apply + * the failure strategies (e.g., keeping alarm bits active). + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* FailState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Fail update function"); + + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the fail state. + * Sets the "Alarm Common" point to 1 to indicate a general fault condition. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Fail State..."); +} + +/** + * @brief Logic to execute once when exiting the fail state. + * Clears the "Alarm Common" point to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void FailState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Fail State..."); +} \ No newline at end of file diff --git a/src/EPMS/RPP/RPP_Cortex_TCP/State_Running.cpp b/src/EPMS/RPP/RPP_Cortex_TCP/State_Running.cpp new file mode 100644 index 0000000..5b5350c --- /dev/null +++ b/src/EPMS/RPP/RPP_Cortex_TCP/State_Running.cpp @@ -0,0 +1,99 @@ +/** + * @file State_Running.cpp + * @brief Implementation of the RunningState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the RunningState, which defines + * the behavior of the equipment when it is actively running. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "Strategies/Strategy_Totalizer.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif + +/** + * @brief Constructs a new RunningState object. + * + * This constructor initializes behavior strategies active during the running + * state, such as a PID controller for the 'CW Valve Position' and totalizers + * for the run-hours of each EC fan. + */ +template<> +RunningState::RunningState() { + addStrategy("TT01", new SingleValueStrategy(870.0F, 10.0f, 1000)); + +} + +/** + * @brief Executes the running state's logic for one update cycle. + * + * This method first checks for state transition commands: + * 1. It reads the "ON/OFF Command By BMS" point. If it's 0, it transitions to StandbyState. + * 2. It reads the "Fault Code" point. If it's non-zero, it transitions to FailState, + * passing the corresponding alarm description. + * + * If no transition occurs, it applies the strategies defined for the running state. + * + * @param equipment Pointer to the Equipment instance. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* RunningState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Running update function"); + float State_Ctrl = getPointValue(equipment, "Remote_Start"); + if (State_Ctrl == 0){ + return new StandbyState(); + } + + float TT01 = getPointValue(equipment, "TT01"); + float TT02 = getPointValue(equipment, "TT02"); + setPointValue(equipment, "TT01_TT02", (TT01 + TT02)/2.0f); + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the running state. + * Sets the "Run Status" for all EC fans to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Running State..."); + // You could also update a Modbus register to show the "standby" state + setPointValue(equipment, "Status", 1); +} + +/** + * @brief Logic to execute once when exiting the running state. + * Sets the "Run Status" for all EC fans to 0 before transitioning to the next state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void RunningState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Running State..."); + +} \ No newline at end of file diff --git a/src/EPMS/RPP/RPP_Cortex_TCP/State_Standby.cpp b/src/EPMS/RPP/RPP_Cortex_TCP/State_Standby.cpp new file mode 100644 index 0000000..cf74d5b --- /dev/null +++ b/src/EPMS/RPP/RPP_Cortex_TCP/State_Standby.cpp @@ -0,0 +1,224 @@ +/** + * @file State_Standby.cpp + * @brief Implementation of the StandbyState class. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-05 + * + * This file contains the implementation for the StandbyState, which defines + * the behavior of the equipment when it is in an idle or standby mode. + */ +#include "ModbusPoints/Modbus_Point.h" +#include "ModbusPoints/Modbus_FloatDecorator.h" +#include "Equipment/Equipment.h" +#include "Strategies/Strategy_Ramp.h" +#include "Strategies/Strategy_Random.h" +#include "Strategies/Strategy_Saw.h" +#include "Strategies/Strategy_SingleValue.h" +#include "Strategies/Strategy_Square.h" +#include "Strategies/Strategy_PID.h" +#include "States/State_Standby.h" +#include "States/State_Running.h" +#include "States/State_Fail.h" +#include "States/State.h" +#include +#include +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +/** + * @brief Constructs a new StandbyState object. + * + * In this state, the equipment is idle. This constructor initializes strategies + * to bring the system to a safe, idle condition. It sets a stable value for + * the SAT reading and creates ramp strategies to bring the CW valve and all + * EC fan speeds down to zero. + */ +template<> +StandbyState::StandbyState() { + // You can add initialization code here if needed + addStrategy("In_freq", new SingleValueStrategy(60.0F, 1.0f, 1000)); + addStrategy("InV_L1N", new SingleValueStrategy(220.0F, 1.0f, 1000)); + addStrategy("InV_L2N", new SingleValueStrategy(220.0F, 1.0f, 1000)); + addStrategy("InV_L3N", new SingleValueStrategy(220.0F, 1.0f, 1000)); + addStrategy("InV_L12", new SingleValueStrategy(480.0F, 1.0f, 1000)); + addStrategy("InV_L23", new SingleValueStrategy(480.0F, 1.0f, 1000)); + addStrategy("InV_L31", new SingleValueStrategy(480.0F, 1.0f, 1000)); + addStrategy("InTHD_L1N", new SingleValueStrategy(2.5F, 0.5f, 1000)); + addStrategy("InTHD_L2N", new SingleValueStrategy(3.1F, 0.5f, 1000)); + addStrategy("InTHD_L3N", new SingleValueStrategy(2.4F, 0.5f, 1000)); + addStrategy("InTHD_L1_1st", new SingleValueStrategy(2.4F, 0.2f, 1000)); + addStrategy("InTHD_L1_3rd", new SingleValueStrategy(2.1F, 0.2f, 1000)); + addStrategy("InTHD_L1_5th", new SingleValueStrategy(1.9F, 0.2f, 1000)); + addStrategy("InTHD_L1_7th", new SingleValueStrategy(2.1F, 0.2f, 1000)); + addStrategy("InTHD_L1_9th", new SingleValueStrategy(1.8F, 0.2f, 1000)); + addStrategy("InTHD_L2_1st", new SingleValueStrategy(2.3F, 0.2f, 1000)); + addStrategy("InTHD_L2_3rd", new SingleValueStrategy(2.2F, 0.2f, 1000)); + addStrategy("InTHD_L2_5th", new SingleValueStrategy(2.4F, 0.2f, 1000)); + addStrategy("InTHD_L2_7th", new SingleValueStrategy(2.5F, 0.2f, 1000)); + addStrategy("InTHD_L2_9th", new SingleValueStrategy(2.6F, 0.2f, 1000)); + addStrategy("InTHD_L3_1st", new SingleValueStrategy(2.2F, 0.2f, 1000)); + addStrategy("InTHD_L3_3rd", new SingleValueStrategy(2.3F, 0.2f, 1000)); + addStrategy("InTHD_L3_5th", new SingleValueStrategy(2.1F, 0.2f, 1000)); + addStrategy("InTHD_L3_7th", new SingleValueStrategy(2.4F, 0.2f, 1000)); + addStrategy("InTHD_L3_9th", new SingleValueStrategy(2.5F, 0.2f, 1000)); + addStrategy("InTHD_L12", new SingleValueStrategy(3.1F, 0.2f, 1000)); + addStrategy("InTHD_L23", new SingleValueStrategy(2.1F, 0.2f, 1000)); + addStrategy("InTHD_L31", new SingleValueStrategy(1.8F, 0.2f, 1000)); + + addStrategy("CB1_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB2_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB3_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB4_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB5_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB6_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB7_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB8_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB9_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB10_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB11_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB12_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB13_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB14_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB15_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + addStrategy("CB16_kW", new SingleValueStrategy(3.1F, 3.0f, 1000)); + + addStrategy("MainCB_PF", new SingleValueStrategy(0.9F, 0.05f, 1000)); + +} + +/** + * @brief Executes the standby state's logic for one update cycle. + * + * This method applies the strategies defined for the standby state (e.g., + * ramping values to zero). + * + * @warning This method currently does not check for a command to transition to the + * Running state. This logic needs to be added to allow the unit to start. + * @return A pointer to a new State if a transition should occur, otherwise nullptr. + */ +template<> +State* StandbyState::update(Equipment* equipment) { + // STATE control, add conditions if change to a different state is needed + Serial.println("Standby update function"); + + // Calculate Avergae for voltage LN points + float InV_L1N = getPointValue(equipment, "InV_L1N"); + float InV_L2N = getPointValue(equipment, "InV_L2N"); + float InV_L3N = getPointValue(equipment, "InV_L3N"); + setPointValue(equipment, "InV_LN_avg", (InV_L1N + InV_L2N + InV_L3N)/3.0f); + // Calculate Avergae for voltage LL points + float InV_L12 = getPointValue(equipment, "InV_L12"); + float InV_L23 = getPointValue(equipment, "InV_L23"); + float InV_L31 = getPointValue(equipment, "InV_L31"); + setPointValue(equipment, "InV_LL_avg", (InV_L12 + InV_L23 + InV_L31)/3.0f); + + + for (int i = 1; i <= 16; i++) { + std::string cb_name = "CB" + std::to_string(i); + std::string kw_name = cb_name + "_kW"; + std::string max_kw_name = cb_name + "_max_kW"; + std::string max_current_name = cb_name + "_maxCurrent"; + + float cb_value = getPointValue(equipment, cb_name.c_str()); + if (cb_value == 1.0f){ + float kw = 350.0f; + Strategy_Behavior* svs_cb_kW = getStrategy(kw_name.c_str()); + static_cast(svs_cb_kW)->setSetpoint(kw); + + float in_v_ll_avg = getPointValue(equipment, "InV_LL_avg"); + float current = (kw*1000.0f)/(in_v_ll_avg*1.73f); + setPointValue(equipment, max_current_name.c_str(), current); + + float max_kw = getPointValue(equipment, max_kw_name.c_str()); + if (kw > max_kw){ + setPointValue(equipment, max_kw_name.c_str(), kw); + } + + float max_current = getPointValue(equipment, max_current_name.c_str()); + if (current > max_current){ + setPointValue(equipment, max_current_name.c_str(), current); + } + } + + + } + + float mainCB_total_kW = 0.0f; + float mainCB_maxCurrent = 0.0f; + float mainCB_neutralCurrent = 0.0f; + float mainCB_maxTotalKw = 0.0f; + float mainCB_maxTotalCurrent = 0.0f; + for (int i = 1; i <= 16; i++) { + std::string kw_name = "CB" + std::to_string(i) + "_kW"; + std::string max_current_name = "CB" + std::to_string(i) + "_maxCurrent"; + mainCB_total_kW += getPointValue(equipment, kw_name.c_str()); + mainCB_maxCurrent += getPointValue(equipment, max_current_name.c_str()); + float max_kw = getPointValue(equipment, ("CB" + std::to_string(i) + "_max_kW").c_str()); + if (max_kw > mainCB_maxTotalKw) { + mainCB_maxTotalKw = max_kw; + } + float max_current = getPointValue(equipment, max_current_name.c_str()); + if (max_current > mainCB_maxTotalCurrent) { + mainCB_maxTotalCurrent = max_current; + } + } + + float mainCB_PF = getPointValue(equipment, "MainCB_PF"); + setPointValue(equipment, "MainCB_Total_kW", mainCB_total_kW); + setPointValue(equipment, "MainCB_maxCurrent", mainCB_maxCurrent); + setPointValue(equipment, "MainCB_neutralCurrent", mainCB_neutralCurrent); + setPointValue(equipment, "MainCB_maxTotalkW", mainCB_maxTotalKw); + setPointValue(equipment, "MainCB_maxTotalCurrent", mainCB_maxTotalCurrent); + + setPointValue(equipment, "MainCB_L1_kW", mainCB_total_kW); + setPointValue(equipment, "MainCB_L1_kVA", mainCB_total_kW*1.3f); + setPointValue(equipment, "MainCB_L1_Current", mainCB_maxCurrent); + setPointValue(equipment, "MainCB_L1_PF", mainCB_PF); + setPointValue(equipment, "MainCB_L1_max_kW", mainCB_maxTotalKw); + setPointValue(equipment, "MainCB_L1_max_current", mainCB_maxTotalCurrent); + + setPointValue(equipment, "MainCB_L2_kW", mainCB_total_kW); + setPointValue(equipment, "MainCB_L2_kVA", mainCB_total_kW*1.3f); + setPointValue(equipment, "MainCB_L2_Current", mainCB_maxCurrent); + setPointValue(equipment, "MainCB_L2_PF", mainCB_PF); + setPointValue(equipment, "MainCB_L2_max_kW", mainCB_maxTotalKw); + setPointValue(equipment, "MainCB_L2_max_current", mainCB_maxTotalCurrent); + + setPointValue(equipment, "MainCB_L3_kW", mainCB_total_kW); + setPointValue(equipment, "MainCB_L3_kVA", mainCB_total_kW*1.3f); + setPointValue(equipment, "MainCB_L3_Current", mainCB_maxCurrent); + setPointValue(equipment, "MainCB_L3_PF", mainCB_PF); + setPointValue(equipment, "MainCB_L3_max_kW", mainCB_maxTotalKw); + setPointValue(equipment, "MainCB_L3_max_current", mainCB_maxTotalCurrent); + + + // Apply any strategies defined for the standby state + _applyStrategies(equipment); + return nullptr; +} + +/** + * @brief Logic to execute once when entering the standby state. + * This method performs cleanup by setting all alarm points and all EC fan + * run status points to 0. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::enterState(Equipment* equipment) { + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); + setPointValue(equipment, "Status", 0); +} + +/** + * @brief Logic to execute once when exiting the standby state. + * @param equipment Pointer to the Equipment instance. + */ +template<> +void StandbyState::exitState(Equipment* equipment) { + // Cleanup logic to run when the equipment leaves this state + Serial.println("Exit Standby State..."); +} + diff --git a/src/EPMS/RPP/RPP_Cortex_TCP/config.h b/src/EPMS/RPP/RPP_Cortex_TCP/config.h new file mode 100644 index 0000000..ac5d0bf --- /dev/null +++ b/src/EPMS/RPP/RPP_Cortex_TCP/config.h @@ -0,0 +1,219 @@ +/** + * @file config.h + * @brief Main configuration file for the CRAH Unit (TCP) emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * This file contains two important configurations: WiFi network parameters + * and the Modbus register map for the device. + */ + +#ifndef CONFIG_H +#define CONFIG_H + +#include "core.h" +#include "Equipment/Equipment.h" + +#if defined(USE_MODBUS_IP) +/** + * @defgroup ModbusTCPConfig Modbus IP Configuration + * @brief Parameters for Modbus TCP communication. + * @{ + */ + #include + const char *ssid = "Oracle_SA"; /**< @brief The SSID of the WiFi network. */ + const char *password = "Prime!123"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 38, 51); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 38, 1); /**< @brief The gateway IP address. */ + IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ + + ModbusIP mb; +#else + /** + * @defgroup ModbusRTUConfig Modbus RTU Configuration + * @brief Parameters for serial Modbus RTU communication. + * @{ + */ + #include + const int BAUDRATE = 19200; /**< @brief The serial communication speed in bits per second. */ + const int RX_PIN = 17; /**< @brief The GPIO pin used for receiving data (RX). */ + const int TX_PIN = 16; /**< @brief The GPIO pin used for transmitting data (TX). */ + const int RST_PIN = 4; /**< @brief The GPIO pin connected to the RS485 driver's DE/RE pins for direction control. */ + const int MODBUS_ID = 1; /**< @brief The unique slave ID for this device on the Modbus bus. */ + /** @} */ + + /** @brief Global instance of the Modbus RTU server. */ + ModbusRTU mb; +#endif + + + +/** + * @defgroup ModbusMapConfig Modbus Map Configuration + * @brief Defines the Modbus register map and related parameters for the emulator. + * @{ + */ +/** + * @brief The Modbus map for the Equipment device. + * This array defines all the Modbus points available on the emulated device. + * The `description` field is crucial as it's used to look up points within the application logic. + */ +modbusMap mb_map[] = +{ + {HR, 2046, 0, "CB1"}, + {HR, 2047, 0, "CB2"}, + {HR, 2048, 0, "CB3"}, + {HR, 2049, 0, "CB4"}, + {HR, 2050, 0, "CB5"}, + {HR, 2051, 0, "CB6"}, + {HR, 2052, 0, "CB7"}, + {HR, 2053, 0, "CB8"}, + {HR, 2054, 0, "CB9"}, + {HR, 2055, 0, "CB10"}, + {HR, 2056, 0, "CB11"}, + {HR, 2057, 0, "CB12"}, + {HR, 2058, 0, "CB13"}, + {HR, 2059, 0, "CB14"}, + {HR, 2060, 0, "CB15"}, + {HR, 2061, 0, "CB16"}, + {HR_FLOAT, 9000, 0, "In_freq"}, + {HR_FLOAT, 9002, 0, "InV_L1N"}, + {HR_FLOAT, 9004, 0, "InV_L2N"}, + {HR_FLOAT, 9006, 0, "InV_L3N"}, + {HR_FLOAT, 9008, 0, "InV_LN_avg"}, + {HR_FLOAT, 9010, 0, "InV_L12"}, + {HR_FLOAT, 9012, 0, "InV_L23"}, + {HR_FLOAT, 9014, 0, "InV_L31"}, + {HR_FLOAT, 9016, 0, "InV_LL_avg"}, + {HR_FLOAT, 9018, 0, "InTHD_L1N"}, + {HR_FLOAT, 9020, 0, "InTHD_L2N"}, + {HR_FLOAT, 9022, 0, "InTHD_L3N"}, + {HR_FLOAT, 9036, 0, "InTHD_L1_1st"}, + {HR_FLOAT, 9040, 0, "InTHD_L1_3rd"}, + {HR_FLOAT, 9044, 0, "InTHD_L1_5th"}, + {HR_FLOAT, 9048, 0, "InTHD_L1_7th"}, + {HR_FLOAT, 9052, 0, "InTHD_L1_9th"}, + {HR_FLOAT, 9162, 0, "InTHD_L2_1st"}, + {HR_FLOAT, 9166, 0, "InTHD_L2_3rd"}, + {HR_FLOAT, 9170, 0, "InTHD_L2_5th"}, + {HR_FLOAT, 9174, 0, "InTHD_L2_7th"}, + {HR_FLOAT, 9178, 0, "InTHD_L2_9th"}, + {HR_FLOAT, 9288, 0, "InTHD_L3_1st"}, + {HR_FLOAT, 9292, 0, "InTHD_L3_3rd"}, + {HR_FLOAT, 9296, 0, "InTHD_L3_5th"}, + {HR_FLOAT, 9300, 0, "InTHD_L3_7th"}, + {HR_FLOAT, 9304, 0, "InTHD_L3_9th"}, + {HR_FLOAT, 9018, 0, "InTHD_L12"}, + {HR_FLOAT, 9020, 0, "InTHD_L23"}, + {HR_FLOAT, 9022, 0, "InTHD_L31"}, + + {HR_FLOAT, 13456, 0, "CB1_kW"}, + {HR_FLOAT, 13460, 0, "CB2_kW"}, + {HR_FLOAT, 13464, 0, "CB3_kW"}, + {HR_FLOAT, 13468, 0, "CB4_kW"}, + {HR_FLOAT, 13472, 0, "CB5_kW"}, + {HR_FLOAT, 13476, 0, "CB6_kW"}, + {HR_FLOAT, 13480, 0, "CB7_kW"}, + {HR_FLOAT, 13484, 0, "CB8_kW"}, + {HR_FLOAT, 13488, 0, "CB9_kW"}, + {HR_FLOAT, 13492, 0, "CB10_kW"}, + {HR_FLOAT, 13496, 0, "CB11_kW"}, + {HR_FLOAT, 13500, 0, "CB12_kW"}, + {HR_FLOAT, 13504, 0, "CB13_kW"}, + {HR_FLOAT, 13508, 0, "CB14_kW"}, + {HR_FLOAT, 13512, 0, "CB15_kW"}, + {HR_FLOAT, 13516, 0, "CB16_kW"}, + + {HR_FLOAT, 14608, 0, "CB1_Current"}, + {HR_FLOAT, 14612, 0, "CB2_Current"}, + {HR_FLOAT, 14616, 0, "CB3_Current"}, + {HR_FLOAT, 14620, 0, "CB4_Current"}, + {HR_FLOAT, 14624, 0, "CB5_Current"}, + {HR_FLOAT, 14628, 0, "CB6_Current"}, + {HR_FLOAT, 14632, 0, "CB7_Current"}, + {HR_FLOAT, 14636, 0, "CB8_Current"}, + {HR_FLOAT, 14640, 0, "CB9_Current"}, + {HR_FLOAT, 14644, 0, "CB10_Current"}, + {HR_FLOAT, 14648, 0, "CB11_Current"}, + {HR_FLOAT, 14652, 0, "CB12_Current"}, + {HR_FLOAT, 14656, 0, "CB13_Current"}, + {HR_FLOAT, 14660, 0, "CB14_Current"}, + {HR_FLOAT, 14664, 0, "CB15_Current"}, + {HR_FLOAT, 14668, 0, "CB16_Current"}, + + {HR_FLOAT, 16912, 0, "CB1_max_kW"}, + {HR_FLOAT, 16916, 0, "CB2_max_kW"}, + {HR_FLOAT, 16920, 0, "CB3_max_kW"}, + {HR_FLOAT, 16924, 0, "CB4_max_kW"}, + {HR_FLOAT, 16928, 0, "CB5_max_kW"}, + {HR_FLOAT, 16932, 0, "CB6_max_kW"}, + {HR_FLOAT, 16936, 0, "CB7_max_kW"}, + {HR_FLOAT, 16940, 0, "CB8_max_kW"}, + {HR_FLOAT, 16944, 0, "CB9_max_kW"}, + {HR_FLOAT, 16948, 0, "CB10_max_kW"}, + {HR_FLOAT, 16952, 0, "CB11_max_kW"}, + {HR_FLOAT, 16956, 0, "CB12_max_kW"}, + {HR_FLOAT, 16960, 0, "CB13_max_kW"}, + {HR_FLOAT, 16964, 0, "CB14_max_kW"}, + {HR_FLOAT, 16968, 0, "CB15_max_kW"}, + {HR_FLOAT, 16972, 0, "CB16_max_kW"}, + + {HR_FLOAT, 17296, 0, "CB1_maxCurrent"}, + {HR_FLOAT, 17300, 0, "CB2_maxCurrent"}, + {HR_FLOAT, 17304, 0, "CB3_maxCurrent"}, + {HR_FLOAT, 17308, 0, "CB4_maxCurrent"}, + {HR_FLOAT, 17312, 0, "CB5_maxCurrent"}, + {HR_FLOAT, 17316, 0, "CB6_maxCurrent"}, + {HR_FLOAT, 17320, 0, "CB7_maxCurrent"}, + {HR_FLOAT, 17324, 0, "CB8_maxCurrent"}, + {HR_FLOAT, 17328, 0, "CB9_maxCurrent"}, + {HR_FLOAT, 17332, 0, "CB10_maxCurrent"}, + {HR_FLOAT, 17336, 0, "CB11_maxCurrent"}, + {HR_FLOAT, 17340, 0, "CB12_maxCurrent"}, + {HR_FLOAT, 17344, 0, "CB13_maxCurrent"}, + {HR_FLOAT, 17348, 0, "CB14_maxCurrent"}, + {HR_FLOAT, 17352, 0, "CB15_maxCurrent"}, + {HR_FLOAT, 17356, 0, "CB16_maxCurrent"}, + + {HR_FLOAT, 40058, 0, "MainCB_Total_kW"}, + {HR_FLOAT, 40064, 0, "MainCB_maxCurrent"}, + {HR_FLOAT, 40068, 0, "MainCB_neutralCurrent"}, + {HR_FLOAT, 40070, 0, "MainCB_PF"}, + {HR_FLOAT, 40074, 0, "MainCB_maxTotalkW"}, + {HR_FLOAT, 40076, 0, "MainCB_maxTotalCurrent"}, + + {HR_FLOAT, 40108, 0, "MainCB_L1_kW"}, + {HR_FLOAT, 40112, 0, "MainCB_L1_kVA"}, + {HR_FLOAT, 40114, 0, "MainCB_L1_Current"}, + {HR_FLOAT, 40116, 0, "MainCB_L1_PF"}, + {HR_FLOAT, 40126, 0, "MainCB_L1_max_kW"}, + {HR_FLOAT, 40128, 0, "MainCB_L1_max_current"}, + + {HR_FLOAT, 40158, 0, "MainCB_L2_kW"}, + {HR_FLOAT, 40162, 0, "MainCB_L2_kVA"}, + {HR_FLOAT, 40164, 0, "MainCB_L2_Current"}, + {HR_FLOAT, 40166, 0, "MainCB_L2_PF"}, + {HR_FLOAT, 40176, 0, "MainCB_L2_max_kW"}, + {HR_FLOAT, 40178, 0, "MainCB_L2_max_current"}, + + {HR_FLOAT, 40208, 0, "MainCB_L3_kW"}, + {HR_FLOAT, 40212, 0, "MainCB_L3_kVA"}, + {HR_FLOAT, 40214, 0, "MainCB_L3_Current"}, + {HR_FLOAT, 40216, 0, "MainCB_L3_PF"}, + {HR_FLOAT, 40226, 0, "MainCB_L3_max_kW"}, + {HR_FLOAT, 40228, 0, "MainCB_L3_max_current"}, + +}; +//Size of modbus map used in FOR cycles, automatically calculated. + +/** + * @brief The total number of entries in the `mb_map` array. + * This is calculated at compile time and used for iterating over the map. + */ +const int map_size = sizeof(mb_map) / sizeof(mb_map[0]); + +/** @brief The main loop update interval in milliseconds. */ +int interval = 250; +/** @} */ // End of ModbusMapConfig group + +#endif // CONFIG_H diff --git a/src/EPMS/RPP/RPP_Cortex_TCP/main.cpp b/src/EPMS/RPP/RPP_Cortex_TCP/main.cpp new file mode 100644 index 0000000..286a98c --- /dev/null +++ b/src/EPMS/RPP/RPP_Cortex_TCP/main.cpp @@ -0,0 +1,86 @@ +/** + * @file main.cpp + * @brief Main execution program for the CRAH Unit (TCP) Emulator. + * @author Emmanuel Hernandez Cruz + * @date 2025-09-02 + * + * @details This file contains the main execution program for an Arduino-based emulator of a CRAH unit. + * The program uses a Wi-Fi connection to communicate via the Modbus IP protocol. + * + * The setup() function initializes the following: + * - Serial communication for debugging. + * - Wi-Fi connection using credentials from config.h. + * - A Modbus TCP server. + * - Modbus points (Coils, Holding Registers, etc.) based on a predefined map in config.h. + * + * The loop() function continuously: + * - Services the Modbus TCP server to handle incoming requests. + * - Periodically calls the main update loop for the emulated equipment, which + * manages state transitions and behavior strategies. + * + * @see config.h for Wi-Fi and Modbus configuration. + * @see Equipment.h for the main equipment logic. + * @see State.h for different equipment states. + * @see Strategies/Strategy_Behavior.h for value generation strategies. + * @see Modbus_Point.h for the base class for all Modbus points. + */ +//================================================================================================================================= +//Libraries and declaration of variables. +#include +#include "config.h" +#include "ModbusPoints/Modbus_PointFactory.h" +#if defined(USE_MODBUS_IP) + #include +#else + #include +#endif +//================================================================================================================================= +/** + * @brief Initializes the application. + * @details This function runs once at startup. It configures the serial communication, + * Wi-Fi, and the Modbus server. It also creates and initializes all the Modbus points + * based on the `mb_map` array in `config.h`. + */ +void setup() { + Serial.begin(115200); //Serial comm start + WiFi.config(local_IP, gateway, subnet); // Wifi service start + WiFi.begin(ssid, password); + while (WiFi.status() != WL_CONNECTED) { + delay(1000); + Serial.print("."); + } + Serial.println("Connected!!"); + mb.server(); //Modbus server start + Serial.println("Server Created"); + Serial.println(map_size); + for(int i = 0; i < map_size; i++){ + Modbus_Point* point = createModbus_Point(&mb, mb_map[i].category, mb_map[i].address, mb_map[i].value, mb_map[i].description); + if (point) { + point->addToModbusServer(); + EquipmentInstance.addModbus_Point(mb_map[i].description, point); + } + } + Serial.println("All modbus Points created"); + Serial.println("Setup function ended"); +} +//================================================================================================================================= +/** + * @brief The main application loop. + * @details This function runs repeatedly after setup() has completed. It performs two main actions: + * 1. It continuously services the Modbus server by calling `mb.task()` to handle + * incoming requests from a Modbus master. + * 2. At a fixed interval (defined in `config.h`), it calls `EquipmentInstance.update()` + * to run the emulator's internal state machine and behavior logic. + */ +void loop() { + mb.task(); + unsigned long currentMillis = millis(); + if (currentMillis - previousMillis >= interval) { + previousMillis = currentMillis; + unsigned long startTime = millis(); + EquipmentInstance.update(); + unsigned long endTime = millis(); + unsigned long elapsedTime = endTime - startTime; + Serial.printf("Control Execution time: %d ms\n", elapsedTime); + } +} diff --git a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Battery.cpp b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Battery.cpp index 29c1e91..b3c7894 100644 --- a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Battery.cpp +++ b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Battery.cpp @@ -40,31 +40,32 @@ */ template<> BatteryState::BatteryState() { - addStrategy("System Output RMS A-B", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS B-C", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS C-A", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS A-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Output RMS B-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Output RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); + addStrategy("System Output RMS A-B", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS B-C", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS C-A", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS A-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Output RMS B-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Output RMS C-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Output RMS Current Phase A", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output RMS Current Phase B", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output RMS Current Phase C", new RampStrategy(10.0f, 50.0f, 1000)); addStrategy("System Output Frequency", new SingleValueStrategy(60.0F, 2.0f, 1000)); - addStrategy("System Output Power Factor Phs A", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Output Power Factor Phs B", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Output Power Factor Phs C", new SingleValueStrategy(93.0F, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs A", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs B", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs C", new SingleValueStrategy(93.0f, 5.0f, 1000)); - addStrategy("System Output Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Output Power Phase A", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Power Phase B", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Power Phase C", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs A", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs B", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs C", new RampStrategy(10.0f, 50.0f, 1000)); - addStrategy("Battery Time Remaining", new RampStrategy(0.0F, 0.3f, 1000)); + addStrategy("Battery Time Remaining", new RampStrategy(0.0f, 3.0f, 1000)); + addStrategy("Percentage Load", new RampStrategy(0.0f, 5.0f, 1000)); } /** @@ -95,95 +96,123 @@ State* BatteryState::update(Equipment* equipment) case 4: return new BypassState(); break; - default: + default: break; - } - - float rating = getPointValue(equipment, "Px Rating"); - float load = getPointValue(equipment, "Px Load"); - float real_load = rating * (load/100.f); - - Strategy_Behavior* ramp_strat = nullptr; + } + + float Battery_time = getPointValue(equipment, "Battery Time Remaining"); + float Bat_Percent = Battery_time /4.80f; + float select = 1.0f; + if (Bat_Percent > 98.0f){ + setPointValue(equipment, "UPS Battery Status2", 0.0f); + select = 1.0f; + } + if (Bat_Percent > 20.0f) { + setPointValue(equipment, "UPS Battery Status1", 2.0f); + setPointValue(equipment, "Battery Low", 0.0f); + select = 1.0f; + } + if (Bat_Percent <= 20.0f && Bat_Percent >= 5.0f){ + setPointValue(equipment, "UPS Battery Status1", 3.0f); + setPointValue(equipment, "Battery Low", 1.0f); + select = 0.8f; + } + if (Bat_Percent < 5.0f){ + setPointValue(equipment, "UPS Battery Status1", 4.0f); + select = 0.05f; + } + float rating = getPointValue(equipment, "Px Rating"); + float load = getPointValue(equipment, "Px Load"); + float real_load = (rating) * (load/100.0f); + + Strategy_Behavior* ramp_strat = nullptr; //Output strategies - float Out_Vab = getPointValue(equipment, "System Output RMS A-B"); - ramp_strat = getStrategy("System Output RMS Current Phase A"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vab); - float Out_Vbc = getPointValue(equipment, "System Output RMS B-C"); - ramp_strat = getStrategy("System Output RMS Current Phase B"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vbc); - float Out_Vca = getPointValue(equipment, "System Output RMS C-A"); - ramp_strat = getStrategy("System Output RMS Current Phase C"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vca); + float Out_Vab = getPointValue(equipment, "System Output RMS A-B"); + ramp_strat = getStrategy("System Output RMS Current Phase A"); + static_cast(ramp_strat)->setTarget(real_load*select); + float Out_Vbc = getPointValue(equipment, "System Output RMS B-C"); + ramp_strat = getStrategy("System Output RMS Current Phase B"); + static_cast(ramp_strat)->setTarget(real_load*select); + float Out_Vca = getPointValue(equipment, "System Output RMS C-A"); + ramp_strat = getStrategy("System Output RMS Current Phase C"); + static_cast(ramp_strat)->setTarget(real_load*select); + + float Out_Van = getPointValue(equipment, "System Output RMS A-N"); + float Out_Ia = getPointValue(equipment, "System Output RMS Current Phase A"); + float Out_PFa = getPointValue(equipment, "System Output Power Factor Phs A"); + ramp_strat = getStrategy("System Output Power Phase A"); + static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia); + ramp_strat = getStrategy("System Output Apparent Power Phs A"); + static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia * Out_PFa); + + float Out_Vbn = getPointValue(equipment, "System Output RMS B-N"); + float Out_Ib = getPointValue(equipment, "System Output RMS Current Phase B"); + float Out_PFb = getPointValue(equipment, "System Output Power Factor Phs B"); + ramp_strat = getStrategy("System Output Power Phase B"); + static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib); + ramp_strat = getStrategy("System Output Apparent Power Phs B"); + static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib * Out_PFb); + + float Out_Vcn = getPointValue(equipment, "System Output RMS C-N"); + float Out_Ic = getPointValue(equipment, "System Output RMS Current Phase C"); + float Out_PFc = getPointValue(equipment, "System Output Power Factor Phs C"); + ramp_strat = getStrategy("System Output Power Phase C"); + static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic); + ramp_strat = getStrategy("System Output Apparent Power Phs C"); + static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic * Out_PFc); - float Out_Van = getPointValue(equipment, "System Output RMS A-N"); - float Out_Ia = getPointValue(equipment, "System Output RMS Current Phase A"); - float Out_PFa = getPointValue(equipment, "System Output Power Factor Phs A"); - ramp_strat = getStrategy("System Output Power Phase A"); - static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia); - ramp_strat = getStrategy("System Output Apparent Power Phase A"); - static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia * Out_PFa); - - float Out_Vbn = getPointValue(equipment, "System Output RMS B-N"); - float Out_Ib = getPointValue(equipment, "System Output RMS Current Phase B"); - float Out_PFb = getPointValue(equipment, "System Output Power Factor Phs B"); - ramp_strat = getStrategy("System Output Power Phase B"); - static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib); - ramp_strat = getStrategy("System Output Apparent Power Phase B"); - static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib * Out_PFb); - - float Out_Vcn = getPointValue(equipment, "System Output RMS C-N"); - float Out_Ic = getPointValue(equipment, "System Output RMS Current Phase C"); - float Out_PFc = getPointValue(equipment, "System Output Power Factor Phs C"); - ramp_strat = getStrategy("System Output Power Phase C"); - static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic); - ramp_strat = getStrategy("System Output Apparent Power Phase C"); - static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic * Out_PFc); - - float Battery_time = getPointValue(equipment, "Battery Time Remaining"); - float Bat_Percent = Battery_time /4.80f; - if (Bat_Percent > 98.0f){ - setPointValue(equipment, "UPS Battery Status2", 0.0f); - } - if (Bat_Percent > 20.0f) { - setPointValue(equipment, "UPS Battery Status1", 2.0f); - setPointValue(equipment, "Battery Low", 0.0f); - } - if (Bat_Percent <= 20.0f && Bat_Percent >= 5.0f){ - setPointValue(equipment, "UPS Battery Status1", 3.0f); - setPointValue(equipment, "Battery Low", 1.0f); - } - if (Bat_Percent < 5.0f){ - setPointValue(equipment, "UPS Battery Status1", 4.0f); - } + setPointValue(equipment, "System Output Power", (real_load * Out_Vab)/1000.0f); + setPointValue(equipment, "System Output Apparent Power", (real_load* Out_Vab * 0.9f)/1000.0f); + // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; -} - -/** - * @brief Logic to execute once when entering the Battery state. - * Sets the "Run Status" for all EC fans to 1 to indicate they are active. - * @param equipment Pointer to the Equipment instance. - */ -template<> -void BatteryState::enterState(Equipment* equipment) { + } + + /** + * @brief Logic to execute once when entering the Battery state. + * Sets the "Run Status" for all EC fans to 1 to indicate they are active. + * @param equipment Pointer to the Equipment instance. + */ + template<> + void BatteryState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state Serial.println("Enter Battery State..."); + setPointValue(equipment, "System Input RMS A-B", 0.0f); + setPointValue(equipment, "System Input RMS B-C", 0.0f); + setPointValue(equipment, "System Input RMS C-A", 0.0f); + setPointValue(equipment, "System Input RMS A-N", 0.0f); + setPointValue(equipment, "System Input RMS B-N", 0.0f); + setPointValue(equipment, "System Input RMS C-N", 0.0f); + setPointValue(equipment, "System Input RMS Current Phase A", 0.0f); + setPointValue(equipment, "System Input RMS Current Phase B", 0.0f); + setPointValue(equipment, "System Input RMS Current Phase C", 0.0f); + setPointValue(equipment, "System Input Frequency", 0.0f); + setPointValue(equipment, "System Input Power Factor Phs A", 0.0f); + setPointValue(equipment, "System Input Power Factor Phs B", 0.0f); + setPointValue(equipment, "System Input Power Factor Phs C", 0.0f); + setPointValue(equipment, "System Input Power Phase A", 0.0f); + setPointValue(equipment, "System Input Power Phase B", 0.0f); + setPointValue(equipment, "System Input Power Phase C", 0.0f); + setPointValue(equipment, "System Input Apparent Power Phs A", 0.0f); + setPointValue(equipment, "System Input Apparent Power Phs B", 0.0f); + setPointValue(equipment, "System Input Apparent Power Phs C", 0.0f); - setPointValue(equipment, "Bypass Input Voltage RMS A-B", 0.0f); - setPointValue(equipment, "Bypass Input Voltage RMS B-C", 0.0f); - setPointValue(equipment, "Bypass Input Voltage RMS C-A", 0.0f); - setPointValue(equipment, "Bypass Input Voltage RMS A-N", 0.0f); - setPointValue(equipment, "Bypass Input Voltage RMS B-N", 0.0f); - setPointValue(equipment, "Bypass Input Voltage RMS C-N", 0.0f); - setPointValue(equipment, "Bypass Input Frequency", 0.0f); - setPointValue(equipment, "Bypass Power Phase A", 0.0f); - setPointValue(equipment, "Bypass Power Phase B", 0.0f); - setPointValue(equipment, "Bypass Power Phase C", 0.0f); - - setPointValue(equipment, "UPS Loading Status", 6.0f); - setPointValue(equipment, "UPS Battery Status2", 2.0f); - // You could also update a Modbus register to show the "standby" state + + setPointValue(equipment, "Bypass Input Voltage RMS A-B", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS B-C", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS C-A", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS A-N", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS B-N", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS C-N", 0.0f); + setPointValue(equipment, "Bypass Input Frequency", 0.0f); + setPointValue(equipment, "Bypass Power Phase A", 0.0f); + setPointValue(equipment, "Bypass Power Phase B", 0.0f); + setPointValue(equipment, "Bypass Power Phase C", 0.0f); + setPointValue(equipment, "UPS Loading Status", 6.0f); + setPointValue(equipment, "UPS Battery Status2", 2.0f); + + // You could also update a Modbus register to show the "standby" state } diff --git a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Bypass.cpp b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Bypass.cpp index 9a1012d..0c92458 100644 --- a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Bypass.cpp +++ b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Bypass.cpp @@ -42,72 +42,72 @@ template<> BypassState::BypassState() { //Input System - addStrategy("System Input RMS A-B", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Input RMS B-C", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Input RMS C-A", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Input RMS A-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Input RMS B-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Input RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); + addStrategy("System Input RMS A-B", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Input RMS B-C", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Input RMS C-A", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Input RMS A-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Input RMS B-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Input RMS C-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Input RMS Current Phase A", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Input RMS Current Phase B", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Input RMS Current Phase C", new RampStrategy(0.0f, 25.0f, 1000)); - addStrategy("System Input Frequency", new SingleValueStrategy(60.0F, 2.0f, 1000)); + addStrategy("System Input Frequency", new SingleValueStrategy(60.0f, 2.0f, 1000)); - addStrategy("System Input Power Factor Phs A", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Input Power Factor Phs B", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Input Power Factor Phs C", new SingleValueStrategy(93.0F, 5.0f, 1000)); + addStrategy("System Input Power Factor Phs A", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Input Power Factor Phs B", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Input Power Factor Phs C", new SingleValueStrategy(93.0f, 5.0f, 1000)); - addStrategy("System Input Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Apparent Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Apparent Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Apparent Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Input Power Phase A", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Power Phase B", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Power Phase C", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Apparent Power Phs A", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Apparent Power Phs B", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Apparent Power Phs C", new RampStrategy(0.0f, 50.0f, 1000)); //Bypass System - addStrategy("Bypass Input Voltage RMS A-B", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("Bypass Input Voltage RMS B-C", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("Bypass Input Voltage RMS C-A", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("Bypass Input Voltage RMS A-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("Bypass Input Voltage RMS B-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("Bypass Input Voltage RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); + addStrategy("Bypass Input Voltage RMS A-B", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("Bypass Input Voltage RMS B-C", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("Bypass Input Voltage RMS C-A", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("Bypass Input Voltage RMS A-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("Bypass Input Voltage RMS B-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("Bypass Input Voltage RMS C-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); - addStrategy("Bypass Input Frequency", new SingleValueStrategy(60.0F, 2.0f, 1000)); + addStrategy("Bypass Input Frequency", new SingleValueStrategy(60.0f, 2.0f, 1000)); - addStrategy("Bypass Input Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("Bypass Input Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("Bypass Input Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("Bypass Input Power Phase A", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("Bypass Input Power Phase B", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("Bypass Input Power Phase C", new RampStrategy(0.0f, 25.0f, 1000)); //Output System - addStrategy("System Output RMS A-B", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS B-C", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS C-A", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS A-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Output RMS B-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Output RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); + addStrategy("System Output RMS A-B", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS B-C", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS C-A", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS A-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Output RMS B-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Output RMS C-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Output RMS Current Phase A", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Output RMS Current Phase B", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Output RMS Current Phase C", new RampStrategy(0.0f, 25.0f, 1000)); - addStrategy("System Output Frequency", new SingleValueStrategy(60.0F, 2.0f, 1000)); + addStrategy("System Output Frequency", new SingleValueStrategy(60.0f, 2.0f, 1000)); - addStrategy("System Output Power Factor Phs A", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Output Power Factor Phs B", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Output Power Factor Phs C", new SingleValueStrategy(93.0F, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs A", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs B", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs C", new SingleValueStrategy(93.0f, 5.0f, 1000)); - addStrategy("System Output Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Output Power Phase A", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Output Power Phase B", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Output Power Phase C", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs A", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs B", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs C", new RampStrategy(0.0f, 50.0f, 1000)); - addStrategy("Battery Time Remaining", new RampStrategy(480.0F, 0.3f, 1000)); - addStrategy("DC Bus Voltage", new SingleValueStrategy(518.0F, 5.0f, 1000)); + addStrategy("Battery Time Remaining", new RampStrategy(480.0f, 0.3f, 1000)); + addStrategy("DC Bus Voltage", new SingleValueStrategy(518.0f, 5.0f, 1000)); } /** @@ -143,85 +143,85 @@ State* BypassState::update(Equipment* equipment) { } float rating = getPointValue(equipment, "Px Rating"); float load = getPointValue(equipment, "Px Load"); - float real_load = rating * (load/100.f); + float real_load = (rating) * (load/100.0f); Strategy_Behavior* ramp_strat = nullptr; //Input strategies float In_Vab = getPointValue(equipment, "System Input RMS A-B"); ramp_strat = getStrategy("System Input RMS Current Phase A"); - static_cast(ramp_strat)->setTarget(real_load/In_Vab); + static_cast(ramp_strat)->setTarget(real_load); float In_Vbc = getPointValue(equipment, "System Input RMS B-C"); ramp_strat = getStrategy("System Input RMS Current Phase B"); - static_cast(ramp_strat)->setTarget(real_load/In_Vbc); + static_cast(ramp_strat)->setTarget(real_load); float In_Vca = getPointValue(equipment, "System Input RMS C-A"); ramp_strat = getStrategy("System Input RMS Current Phase C"); - static_cast(ramp_strat)->setTarget(real_load/In_Vca); + static_cast(ramp_strat)->setTarget(real_load); float In_Van = getPointValue(equipment, "System Input RMS A-N"); float In_Ia = getPointValue(equipment, "System Input RMS Current Phase A"); float In_PFa = getPointValue(equipment, "System Input Power Factor Phs A"); ramp_strat = getStrategy("System Input Power Phase A"); static_cast(ramp_strat)->setTarget(In_Van * In_Ia); - ramp_strat = getStrategy("Bypass Power Phase A"); + ramp_strat = getStrategy("Bypass Input Power Phase A"); static_cast(ramp_strat)->setTarget(In_Van * In_Ia); - ramp_strat = getStrategy("System Input Apparent Power Phase A"); - static_cast(ramp_strat)->setTarget(In_Van * In_Ia * In_PFa); - + ramp_strat = getStrategy("System Input Apparent Power Phs A"); + static_cast(ramp_strat)->setTarget(In_Van * In_Ia * 0.9f); + float In_Vbn = getPointValue(equipment, "System Input RMS B-N"); float In_Ib = getPointValue(equipment, "System Input RMS Current Phase B"); float In_PFb = getPointValue(equipment, "System Input Power Factor Phs B"); ramp_strat = getStrategy("System Input Power Phase B"); static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib); - ramp_strat = getStrategy("Bypass Power Phase B"); + ramp_strat = getStrategy("Bypass Input Power Phase B"); static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib); - ramp_strat = getStrategy("System Input Apparent Power Phase B"); - static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib * In_PFb); - + ramp_strat = getStrategy("System Input Apparent Power Phs B"); + static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib * 0.9f); + float In_Vcn = getPointValue(equipment, "System Input RMS C-N"); float In_Ic = getPointValue(equipment, "System Input RMS Current Phase C"); float In_PFc = getPointValue(equipment, "System Input Power Factor Phs C"); ramp_strat = getStrategy("System Input Power Phase C"); static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic); - ramp_strat = getStrategy("Bypass Power Phase C"); + ramp_strat = getStrategy("Bypass Input Power Phase C"); static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic); - ramp_strat = getStrategy("System Input Apparent Power Phase C"); - static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic * In_PFc); + ramp_strat = getStrategy("System Input Apparent Power Phs C"); + static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic * 0.9f); //Output strategies float Out_Vab = getPointValue(equipment, "System Output RMS A-B"); ramp_strat = getStrategy("System Output RMS Current Phase A"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vab); + static_cast(ramp_strat)->setTarget(real_load); float Out_Vbc = getPointValue(equipment, "System Output RMS B-C"); ramp_strat = getStrategy("System Output RMS Current Phase B"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vbc); + static_cast(ramp_strat)->setTarget(real_load); float Out_Vca = getPointValue(equipment, "System Output RMS C-A"); ramp_strat = getStrategy("System Output RMS Current Phase C"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vca); + static_cast(ramp_strat)->setTarget(real_load); float Out_Van = getPointValue(equipment, "System Output RMS A-N"); float Out_Ia = getPointValue(equipment, "System Output RMS Current Phase A"); float Out_PFa = getPointValue(equipment, "System Output Power Factor Phs A"); ramp_strat = getStrategy("System Output Power Phase A"); static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia); - ramp_strat = getStrategy("System Output Apparent Power Phase A"); - static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia * Out_PFa); + ramp_strat = getStrategy("System Output Apparent Power Phs A"); + static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia * 0.9f); float Out_Vbn = getPointValue(equipment, "System Output RMS B-N"); float Out_Ib = getPointValue(equipment, "System Output RMS Current Phase B"); float Out_PFb = getPointValue(equipment, "System Output Power Factor Phs B"); ramp_strat = getStrategy("System Output Power Phase B"); static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib); - ramp_strat = getStrategy("System Output Apparent Power Phase B"); - static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib * Out_PFb); + ramp_strat = getStrategy("System Output Apparent Power Phs B"); + static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib * 0.9f); float Out_Vcn = getPointValue(equipment, "System Output RMS C-N"); float Out_Ic = getPointValue(equipment, "System Output RMS Current Phase C"); float Out_PFc = getPointValue(equipment, "System Output Power Factor Phs C"); ramp_strat = getStrategy("System Output Power Phase C"); static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic); - ramp_strat = getStrategy("System Output Apparent Power Phase C"); - static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic * Out_PFc); + ramp_strat = getStrategy("System Output Apparent Power Phs C"); + static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic * 0.9f); float Battery_time = getPointValue(equipment, "Battery Time Remaining"); float Bat_Percent = Battery_time /4.80f; @@ -239,11 +239,12 @@ State* BypassState::update(Equipment* equipment) { if (Bat_Percent < 5.0f){ setPointValue(equipment, "UPS Battery Status1", 4.0f); } + setPointValue(equipment, "System Output Power", (real_load * In_Vab)/1000.0f); + setPointValue(equipment, "System Output Apparent Power", (real_load* In_Vab * 0.9f)/1000.0f); // Apply any strategies defined for the standby state _applyStrategies(equipment); return nullptr; } - /** * @brief Logic to execute once when entering the Bypass state. * Sets the "Run Status" for all EC fans to 1 to indicate they are active. @@ -252,9 +253,10 @@ State* BypassState::update(Equipment* equipment) { template<> void BypassState::enterState(Equipment* equipment) { // Logic to run when the equipment enters this state - Serial.println("Enter Battery State..."); + Serial.println("Enter Bypass State..."); setPointValue(equipment, "UPS Loading Status", 4.0f); setPointValue(equipment, "UPS Battery Status2", 3.0f); + setPointValue(equipment, "Percentage Load", 0.0f); // You could also update a Modbus register to show the "standby" state } diff --git a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Running.cpp b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Running.cpp index 4bc0dec..0bdbcb6 100644 --- a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Running.cpp +++ b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Running.cpp @@ -40,60 +40,60 @@ */ template<> RunningState::RunningState() { - addStrategy("System Input RMS A-B", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Input RMS B-C", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Input RMS C-A", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Input RMS A-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Input RMS B-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Input RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); + addStrategy("System Input RMS A-B", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Input RMS B-C", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Input RMS C-A", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Input RMS A-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Input RMS B-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Input RMS C-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input RMS Current Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Input RMS Current Phase A", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Input RMS Current Phase B", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Input RMS Current Phase C", new RampStrategy(0.0f, 25.0f, 1000)); - addStrategy("System Input Frequency", new SingleValueStrategy(60.0F, 2.0f, 1000)); + addStrategy("System Input Frequency", new SingleValueStrategy(60.0f, 2.0f, 1000)); - addStrategy("System Input Power Factor Phs A", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Input Power Factor Phs B", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Input Power Factor Phs C", new SingleValueStrategy(93.0F, 5.0f, 1000)); + addStrategy("System Input Power Factor Phs A", new SingleValueStrategy(93.0f, 0.5f, 1000)); + addStrategy("System Input Power Factor Phs B", new SingleValueStrategy(93.0f, 0.5f, 1000)); + addStrategy("System Input Power Factor Phs C", new SingleValueStrategy(93.0f, 0.5f, 1000)); - addStrategy("System Input Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Apparent Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Apparent Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Input Apparent Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Input Power Phase A", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Power Phase B", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Power Phase C", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Apparent Power Phs A", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Apparent Power Phs B", new RampStrategy(0.0f, 50.0f, 1000)); + addStrategy("System Input Apparent Power Phs C", new RampStrategy(0.0f, 50.0f, 1000)); - - addStrategy("System Output RMS A-B", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS B-C", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS C-A", new SingleValueStrategy(480.0F, 5.0f, 1000)); - addStrategy("System Output RMS A-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Output RMS B-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - addStrategy("System Output RMS C-N", new SingleValueStrategy(270.0F, 5.0f, 1000)); - - addStrategy("System Output RMS Current Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output RMS Current Phase C", new RampStrategy(10.0F, 5.0f, 1000)); + addStrategy("System Output RMS A-B", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS B-C", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS C-A", new SingleValueStrategy(480.0f, 5.0f, 1000)); + addStrategy("System Output RMS A-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Output RMS B-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); + addStrategy("System Output RMS C-N", new SingleValueStrategy(270.0f, 5.0f, 1000)); - addStrategy("System Output Frequency", new SingleValueStrategy(60.0F, 2.0f, 1000)); - - addStrategy("System Output Power Factor Phs A", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Output Power Factor Phs B", new SingleValueStrategy(93.0F, 5.0f, 1000)); - addStrategy("System Output Power Factor Phs C", new SingleValueStrategy(93.0F, 5.0f, 1000)); - - addStrategy("System Output Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase A", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase B", new RampStrategy(10.0F, 5.0f, 1000)); - addStrategy("System Output Apparent Power Phase C", new RampStrategy(10.0F, 5.0f, 1000)); - - addStrategy("Battery Time Remaining", new RampStrategy(480.0F, 1.0f, 1000)); - - - addStrategy("DC Bus Voltage", new SingleValueStrategy(518.0F, 5.0f, 1000)); + addStrategy("System Output RMS Current Phase A", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Output RMS Current Phase B", new RampStrategy(0.0f, 25.0f, 1000)); + addStrategy("System Output RMS Current Phase C", new RampStrategy(0.0f, 25.0f, 1000)); + + addStrategy("System Output Frequency", new SingleValueStrategy(60.0f, 2.0f, 1000)); + + addStrategy("System Output Power Factor Phs A", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs B", new SingleValueStrategy(93.0f, 5.0f, 1000)); + addStrategy("System Output Power Factor Phs C", new SingleValueStrategy(93.0f, 5.0f, 1000)); + + addStrategy("System Output Power Phase A", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Power Phase B", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Power Phase C", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs A", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs B", new RampStrategy(10.0f, 50.0f, 1000)); + addStrategy("System Output Apparent Power Phs C", new RampStrategy(10.0f, 50.0f, 1000)); + + addStrategy("DC Bus Voltage", new SingleValueStrategy(518.0f, 5.0f, 1000)); + addStrategy("Battery Time Remaining", new RampStrategy(480.0f, 1.0f, 1000)); + addStrategy("Percentage Load", new RampStrategy(100.0f, 5.0f, 1000)); + addStrategy("System Output Power", new SingleValueStrategy(0.0f, 5.0f, 1000)); + addStrategy("System Output Apparent Power", new SingleValueStrategy(0.0f, 5.0f, 1000)); } /** @@ -130,78 +130,81 @@ State* RunningState::update(Equipment* equipment) float rating = getPointValue(equipment, "Px Rating"); float load = getPointValue(equipment, "Px Load"); - float real_load = (rating*1000.0f) * (load/100.f); + float real_load = (rating) * (load/100.0f); Strategy_Behavior* ramp_strat = nullptr; //Input strategies float In_Vab = getPointValue(equipment, "System Input RMS A-B"); ramp_strat = getStrategy("System Input RMS Current Phase A"); - static_cast(ramp_strat)->setTarget(real_load/In_Vab); + static_cast(ramp_strat)->setTarget(real_load); float In_Vbc = getPointValue(equipment, "System Input RMS B-C"); ramp_strat = getStrategy("System Input RMS Current Phase B"); - static_cast(ramp_strat)->setTarget(real_load/In_Vbc); + static_cast(ramp_strat)->setTarget(real_load); float In_Vca = getPointValue(equipment, "System Input RMS C-A"); ramp_strat = getStrategy("System Input RMS Current Phase C"); - static_cast(ramp_strat)->setTarget(real_load/In_Vca); + static_cast(ramp_strat)->setTarget(real_load); + + setPointValue(equipment, "System Output Power", (real_load * In_Vab)/1000.0f); + setPointValue(equipment, "System Output Apparent Power", (real_load* In_Vab * 0.9f)/1000.0f); float In_Van = getPointValue(equipment, "System Input RMS A-N"); float In_Ia = getPointValue(equipment, "System Input RMS Current Phase A"); float In_PFa = getPointValue(equipment, "System Input Power Factor Phs A"); ramp_strat = getStrategy("System Input Power Phase A"); static_cast(ramp_strat)->setTarget(In_Van * In_Ia); - ramp_strat = getStrategy("System Input Apparent Power Phase A"); - static_cast(ramp_strat)->setTarget(In_Van * In_Ia * (In_PFa/100.0f)); + ramp_strat = getStrategy("System Input Apparent Power Phs A"); + static_cast(ramp_strat)->setTarget(In_Van * In_Ia * 0.9f); float In_Vbn = getPointValue(equipment, "System Input RMS B-N"); float In_Ib = getPointValue(equipment, "System Input RMS Current Phase B"); float In_PFb = getPointValue(equipment, "System Input Power Factor Phs B"); ramp_strat = getStrategy("System Input Power Phase B"); static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib); - ramp_strat = getStrategy("System Input Apparent Power Phase B"); - static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib * (In_PFb/100.0f)); + ramp_strat = getStrategy("System Input Apparent Power Phs B"); + static_cast(ramp_strat)->setTarget(In_Vbn * In_Ib * 0.9f); float In_Vcn = getPointValue(equipment, "System Input RMS C-N"); float In_Ic = getPointValue(equipment, "System Input RMS Current Phase C"); float In_PFc = getPointValue(equipment, "System Input Power Factor Phs C"); ramp_strat = getStrategy("System Input Power Phase C"); static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic); - ramp_strat = getStrategy("System Input Apparent Power Phase C"); - static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic * (In_PFc/100.0f)); + ramp_strat = getStrategy("System Input Apparent Power Phs C"); + static_cast(ramp_strat)->setTarget(In_Vcn * In_Ic * 0.9f); //Output strategies float Out_Vab = getPointValue(equipment, "System Output RMS A-B"); ramp_strat = getStrategy("System Output RMS Current Phase A"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vab); + static_cast(ramp_strat)->setTarget(real_load); float Out_Vbc = getPointValue(equipment, "System Output RMS B-C"); ramp_strat = getStrategy("System Output RMS Current Phase B"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vbc); + static_cast(ramp_strat)->setTarget(real_load); float Out_Vca = getPointValue(equipment, "System Output RMS C-A"); ramp_strat = getStrategy("System Output RMS Current Phase C"); - static_cast(ramp_strat)->setTarget(real_load/Out_Vca); + static_cast(ramp_strat)->setTarget(real_load); float Out_Van = getPointValue(equipment, "System Output RMS A-N"); float Out_Ia = getPointValue(equipment, "System Output RMS Current Phase A"); float Out_PFa = getPointValue(equipment, "System Output Power Factor Phs A"); ramp_strat = getStrategy("System Output Power Phase A"); static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia); - ramp_strat = getStrategy("System Output Apparent Power Phase A"); - static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia * (Out_PFa/100.0f)); + ramp_strat = getStrategy("System Output Apparent Power Phs A"); + static_cast(ramp_strat)->setTarget(Out_Van * Out_Ia * 0.9f); float Out_Vbn = getPointValue(equipment, "System Output RMS B-N"); float Out_Ib = getPointValue(equipment, "System Output RMS Current Phase B"); float Out_PFb = getPointValue(equipment, "System Output Power Factor Phs B"); ramp_strat = getStrategy("System Output Power Phase B"); static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib); - ramp_strat = getStrategy("System Output Apparent Power Phase B"); - static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib * (Out_PFb/100.0f)); + ramp_strat = getStrategy("System Output Apparent Power Phs B"); + static_cast(ramp_strat)->setTarget(Out_Vbn * Out_Ib * 0.9f); float Out_Vcn = getPointValue(equipment, "System Output RMS C-N"); float Out_Ic = getPointValue(equipment, "System Output RMS Current Phase C"); float Out_PFc = getPointValue(equipment, "System Output Power Factor Phs C"); ramp_strat = getStrategy("System Output Power Phase C"); static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic); - ramp_strat = getStrategy("System Output Apparent Power Phase C"); - static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic * (Out_PFc/100.0f)); + ramp_strat = getStrategy("System Output Apparent Power Phs C"); + static_cast(ramp_strat)->setTarget(Out_Vcn * Out_Ic * 0.9f); float Battery_time = getPointValue(equipment, "Battery Time Remaining"); float Bat_Percent = Battery_time /4.80f; diff --git a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Standby.cpp b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Standby.cpp index 3ce2bbd..602846b 100644 --- a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Standby.cpp +++ b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/State_Standby.cpp @@ -86,9 +86,60 @@ State* StandbyState::update(Equipment* equipment) */ template<> void StandbyState::enterState(Equipment* equipment) { - // Logic to run when the equipment enters this state - Serial.println("Enter Standby State..."); - setPointValue(equipment, "UPS Loading Status", 2.0f); + // Logic to run when the equipment enters this state + Serial.println("Enter Standby State..."); + setPointValue(equipment, "UPS Loading Status", 2.0f); + + setPointValue(equipment, "System Input RMS A-B", 0.0f); + setPointValue(equipment, "System Input RMS B-C", 0.0f); + setPointValue(equipment, "System Input RMS C-A", 0.0f); + setPointValue(equipment, "System Input RMS A-N", 0.0f); + setPointValue(equipment, "System Input RMS B-N", 0.0f); + setPointValue(equipment, "System Input RMS C-N", 0.0f); + setPointValue(equipment, "System Input RMS Current Phase A", 0.0f); + setPointValue(equipment, "System Input RMS Current Phase B", 0.0f); + setPointValue(equipment, "System Input RMS Current Phase C", 0.0f); + setPointValue(equipment, "System Input Frequency", 0.0f); + setPointValue(equipment, "System Input Power Factor Phs A", 0.0f); + setPointValue(equipment, "System Input Power Factor Phs B", 0.0f); + setPointValue(equipment, "System Input Power Factor Phs C", 0.0f); + setPointValue(equipment, "System Input Power Phase A", 0.0f); + setPointValue(equipment, "System Input Power Phase B", 0.0f); + setPointValue(equipment, "System Input Power Phase C", 0.0f); + setPointValue(equipment, "System Input Apparent Power Phs A", 0.0f); + setPointValue(equipment, "System Input Apparent Power Phs B", 0.0f); + setPointValue(equipment, "System Input Apparent Power Phs C", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS A-B", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS B-C", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS C-A", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS A-N", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS B-N", 0.0f); + setPointValue(equipment, "Bypass Input Voltage RMS C-N", 0.0f); + setPointValue(equipment, "Bypass Input Frequency", 0.0f); + setPointValue(equipment, "Bypass Power Phase A", 0.0f); + setPointValue(equipment, "Bypass Power Phase B", 0.0f); + setPointValue(equipment, "Bypass Power Phase C", 0.0f); + setPointValue(equipment, "System Output RMS A-B", 0.0f); + setPointValue(equipment, "System Output RMS B-C", 0.0f); + setPointValue(equipment, "System Output RMS C-A", 0.0f); + setPointValue(equipment, "System Output RMS A-N", 0.0f); + setPointValue(equipment, "System Output RMS B-N", 0.0f); + setPointValue(equipment, "System Output RMS C-N", 0.0f); + setPointValue(equipment, "System Output RMS Current Phase A", 0.0f); + setPointValue(equipment, "System Output RMS Current Phase B", 0.0f); + setPointValue(equipment, "System Output RMS Current Phase C", 0.0f); + setPointValue(equipment, "System Output Frequency", 0.0f); + setPointValue(equipment, "System Output Power Factor Phs A", 0.0f); + setPointValue(equipment, "System Output Power Factor Phs B", 0.0f); + setPointValue(equipment, "System Output Power Factor Phs C", 0.0f); + setPointValue(equipment, "System Output Power Phase A", 0.0f); + setPointValue(equipment, "System Output Power Phase B", 0.0f); + setPointValue(equipment, "System Output Power Phase C", 0.0f); + setPointValue(equipment, "System Output Apparent Power Phs A", 0.0f); + setPointValue(equipment, "System Output Apparent Power Phs B", 0.0f); + setPointValue(equipment, "System Output Apparent Power Phs C", 0.0f); + setPointValue(equipment, "System Output Power", 0.0f); + setPointValue(equipment, "System Output Apparent Power", 0.0f); } /** diff --git a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/config.h b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/config.h index 9db67a4..dc93df8 100644 --- a/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/config.h +++ b/src/EPMS/UPS/UPS_Vertiv_APM2_TCP/config.h @@ -21,10 +21,10 @@ * @{ */ #include - const char *ssid = "wifi_ssid"; /**< @brief The SSID of the WiFi network. */ - const char *password = "wifi_password"; /**< @brief The password for the WiFi network. */ - IPAddress local_IP(192, 168, 1, 234); /**< @brief The static IP address for the device. */ - IPAddress gateway(192, 168, 1, 1); /**< @brief The gateway IP address. */ + const char *ssid = "QTS_CDR_Arduino"; /**< @brief The SSID of the WiFi network. */ + const char *password = "123abc456"; /**< @brief The password for the WiFi network. */ + IPAddress local_IP(172, 17, 33, 187); /**< @brief The static IP address for the device. */ + IPAddress gateway(172, 17, 33, 1); /**< @brief The gateway IP address. */ IPAddress subnet(255, 255, 255, 0); /**< @brief The subnet mask. */ ModbusIP mb; @@ -60,75 +60,76 @@ */ modbusMap mb_map[] = { - {HR, 9, 0, "Px State"}, //1-standby, 2 Running (Normal - charging), 3 Battery, 4 Bypass - {HR, 10, 0, "Px Load"}, //% Internal Fault code from Modscan - {HR, 11, 0, "Px Rating"}, //kVA Internal Fault code from Modscan + {HR, 9, 0, "Px State"}, //1-standby, 2 Running (Normal - charging), 3 Battery, 4 Bypass + {HR, 10, 0, "Px Load"}, //% Internal Fault code from Modscan + {HR, 11, 0, "Px Rating"}, //kVA Internal Fault code from Modscan - {DI, 11, 0, "Output Overload"}, - {DI, 20, 0, "Bypass Not Ready"}, - {DI, 239, 0, "Internal Comms Failure"}, - {DI, 244, 0, "System Shutdown-EPO"}, - {DI, 245, 0, "Fuse Failure"}, - {DI, 247, 0, "System Fan Failure"}, - {DI, 249, 0, "System Output Off"}, - {DI, 254, 0, "UPS Output on Bypass"}, - {DI, 263, 0, "Battery Low"}, + {DI, 11, 0, "Output Overload"}, + {DI, 20, 0, "Bypass Not Ready"}, + {DI, 239, 0, "Internal Comms Failure"}, + {DI, 244, 0, "System Shutdown-EPO"}, + {DI, 245, 0, "Fuse Failure"}, + {DI, 247, 0, "System Fan Failure"}, + {DI, 249, 0, "System Output Off"}, + {DI, 254, 0, "UPS Output on Bypass"}, + {DI, 263, 0, "Battery Low"}, - {IR_10x, 1, 0, "System Input RMS A-B"}, - {IR_10x, 2, 0, "System Input RMS B-C"}, - {IR_10x, 3, 0, "System Input RMS C-A"}, - {IR_10x, 4, 0, "System Input RMS A-N"}, - {IR_10x, 5, 0, "System Input RMS B-N"}, - {IR_10x, 6, 0, "System Input RMS C-N"}, - {IR_10x, 7, 0, "System Input RMS Current Phase A"}, - {IR_10x, 8, 0, "System Input RMS Current Phase B"}, - {IR_10x, 9, 0, "System Input RMS Current Phase C"}, - {IR_10x, 10, 0, "System Input Frequency"}, - {IR_10x, 11, 0, "System Input Power Factor Phs A"}, - {IR_10x, 12, 0, "System Input Power Factor Phs B"}, - {IR_10x, 13, 0, "System Input Power Factor Phs C"}, - {IR_10x, 14, 0, "System Input Power Phase A"}, - {IR_10x, 15, 0, "System Input Power Phase B"}, - {IR_10x, 16, 0, "System Input Power Phase C"}, - {IR_10x, 17, 0, "System Input Apparent Power Phs A"}, - {IR_10x, 18, 0, "System Input Apparent Power Phs B"}, - {IR_10x, 19, 0, "System Input Apparent Power Phs C"}, - {IR_10x, 23, 0, "Bypass Input Voltage RMS A-B"}, - {IR_10x, 24, 0, "Bypass Input Voltage RMS B-C"}, - {IR_10x, 25, 0, "Bypass Input Voltage RMS C-A"}, - {IR_10x, 26, 0, "Bypass Input Voltage RMS A-N"}, - {IR_10x, 27, 0, "Bypass Input Voltage RMS B-N"}, - {IR_10x, 28, 0, "Bypass Input Voltage RMS C-N"}, - {IR_10x, 29, 0, "Bypass Input Frequency"}, - {IR_10x, 30, 0, "Bypass Power Phase A"}, - {IR_10x, 31, 0, "Bypass Power Phase B"}, - {IR_10x, 32, 0, "Bypass Power Phase C"}, - {IR_10x, 38, 0, "System Output RMS A-B"}, - {IR_10x, 39, 0, "System Output RMS B-C"}, - {IR_10x, 40, 0, "System Output RMS C-A"}, - {IR_10x, 41, 0, "System Output RMS A-N"}, - {IR_10x, 42, 0, "System Output RMS B-N"}, - {IR_10x, 43, 0, "System Output RMS C-N"}, - {IR_10x, 44, 0, "System Output RMS Current Phase A"}, - {IR_10x, 45, 0, "System Output RMS Current Phase B"}, - {IR_10x, 46, 0, "System Output RMS Current Phase C"}, - {IR_10x, 50, 0, "System Output Frequency"}, - {IR_10x, 51, 0, "System Output Power Factor Phs A"}, - {IR_10x, 52, 0, "System Output Power Factor Phs B"}, - {IR_10x, 53, 0, "System Output Power Factor Phs C"}, - {IR_10x, 54, 0, "System Output Power Phase A"}, - {IR_10x, 55, 0, "System Output Power Phase B"}, - {IR_10x, 56, 0, "System Output Power Phase C"}, - {IR_10x, 57, 0, "System Output Apparent Power Phs A"}, - {IR_10x, 58, 0, "System Output Apparent Power Phs B"}, - {IR_10x, 59, 0, "System Output Apparent Power Phs C"}, - {IR_10x, 60, 0, "System Output Power"}, - {IR_10x, 61, 0, "System Output Apparent Power"}, - {IR, 164, 0, "UPS Loading Status"}, - {IR_10x, 175, 0, "DC Bus Voltage"}, - {IR, 180, 0, "Battery Time Remaining"}, - {IR, 183, 0, "UPS Battery Status1"}, - {IR, 184, 0, "UPS Battery Status2"}, + {IR, 1, 0, "System Input RMS A-B"}, + {IR, 2, 0, "System Input RMS B-C"}, + {IR, 3, 0, "System Input RMS C-A"}, + {IR, 4, 0, "System Input RMS A-N"}, + {IR, 5, 0, "System Input RMS B-N"}, + {IR, 6, 0, "System Input RMS C-N"}, + {IR, 7, 0, "System Input RMS Current Phase A"}, + {IR, 8, 0, "System Input RMS Current Phase B"}, + {IR, 9, 0, "System Input RMS Current Phase C"}, + {IR_10x, 10, 0, "System Input Frequency"}, + {IR, 11, 0, "System Input Power Factor Phs A"}, //0.01 + {IR, 12, 0, "System Input Power Factor Phs B"}, + {IR, 13, 0, "System Input Power Factor Phs C"}, + {IR_10x, 14, 0, "System Input Power Phase A"}, + {IR_10x, 15, 0, "System Input Power Phase B"}, + {IR_10x, 16, 0, "System Input Power Phase C"}, + {IR_10x, 17, 0, "System Input Apparent Power Phs A"}, + {IR_10x, 18, 0, "System Input Apparent Power Phs B"}, + {IR_10x, 19, 0, "System Input Apparent Power Phs C"}, + {IR, 23, 0, "Bypass Input Voltage RMS A-B"}, + {IR, 24, 0, "Bypass Input Voltage RMS B-C"}, + {IR, 25, 0, "Bypass Input Voltage RMS C-A"}, + {IR, 26, 0, "Bypass Input Voltage RMS A-N"}, + {IR, 27, 0, "Bypass Input Voltage RMS B-N"}, + {IR, 28, 0, "Bypass Input Voltage RMS C-N"}, + {IR_10x, 29, 0, "Bypass Input Frequency"}, + {IR_10x, 30, 0, "Bypass Power Phase A"}, + {IR_10x, 31, 0, "Bypass Power Phase B"}, + {IR_10x, 32, 0, "Bypass Power Phase C"}, + {IR, 38, 0, "System Output RMS A-B"}, + {IR, 39, 0, "System Output RMS B-C"}, + {IR, 40, 0, "System Output RMS C-A"}, + {IR, 41, 0, "System Output RMS A-N"}, + {IR, 42, 0, "System Output RMS B-N"}, + {IR, 43, 0, "System Output RMS C-N"}, + {IR, 44, 0, "System Output RMS Current Phase A"}, + {IR, 45, 0, "System Output RMS Current Phase B"}, + {IR, 46, 0, "System Output RMS Current Phase C"}, + {IR_10x, 50, 0, "System Output Frequency"}, + {IR, 51, 0, "System Output Power Factor Phs A"}, + {IR, 52, 0, "System Output Power Factor Phs B"}, + {IR, 53, 0, "System Output Power Factor Phs C"}, + {IR_10x, 54, 0, "System Output Power Phase A"}, + {IR_10x, 55, 0, "System Output Power Phase B"}, + {IR_10x, 56, 0, "System Output Power Phase C"}, + {IR_10x, 57, 0, "System Output Apparent Power Phs A"}, + {IR_10x, 58, 0, "System Output Apparent Power Phs B"}, + {IR_10x, 59, 0, "System Output Apparent Power Phs C"}, + {IR, 60, 0, "System Output Power"}, + {IR, 61, 0, "System Output Apparent Power"}, + {IR, 164, 0, "UPS Loading Status"}, + {IR, 175, 0, "DC Bus Voltage"}, + {IR, 179, 0, "Percentage Load"}, + {IR, 180, 0, "Battery Time Remaining"}, + {IR, 183, 0, "UPS Battery Status1"}, + {IR, 184, 0, "UPS Battery Status2"}, }; //Size of modbus map used in FOR cycles, automatically calculated.