1218 lines
33 KiB
XML
1218 lines
33 KiB
XML
<?xml version="1.0" encoding="utf-8"?>
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<TcPlcObject Version="1.1.0.1" ProductVersion="3.1.4026.8">
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<POU Name="FB_PowerSupplySunspec" Id="{a826dd09-442c-45c5-8ae3-9b71f293003c}" SpecialFunc="None">
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<Declaration><![CDATA[FUNCTION_BLOCK FB_PowerSupplySunspec
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VAR_INPUT
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sInverterIPAddr : STRING;
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xEnable : BOOL;
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rPower : REAL;
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rReactivePower : REAL := 0.0;
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xReset : BOOL;
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rMaxBattPower : REAL := 40_000; // 24kW
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END_VAR
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VAR_OUTPUT
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// Inverter active
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xActive : BOOL;
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// FB error
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xError : BOOL;
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// Heartbeat ok signal
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xHeartbeatOk : BOOL := TRUE;
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// Current inverter values
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stCurrentValues : ST_SUNSPEC_CURRENT_VALUES;
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END_VAR
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VAR
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// Current state
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_iState : INT := 0;
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// FB for reading Modbus holding registers
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_fbReadRegister : FB_MBReadRegs;
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// FB for writing Modbus holding registers
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_fbWriteRegister : FB_MBWriteRegs;
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// Timer for checking if the inverter started in a reasonable amount of time
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_tonInverterStartup : TON;
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// converter max power scaling factor
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_iWMaxSF : INT;
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// Unscaled converter max power
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_uiWMax : UINT;
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// Scaled converter max power
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_rWMax : REAL;
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// Unscaled limit for converter power
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_iWMaxLimPct : INT;
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// Scaling factor for reactive power percent value
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_iVarPctSF : INT;
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// Reread set power limit
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_iWMaxLimPctRead : INT;
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_rWMaxLimPctReadScaled : REAL;
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// Scaling factor for power limiting
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_iWMaxLimPctSF : INT;
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// Unscaled maximum power from type label
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_iWRTGSF : INT;
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// Scaling for maximum power from type label
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_rWRTGScaling : REAL;
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// Current state of the inverters internal statemachine
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_uiInverterState : UINT;
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// Last written power to the inverter
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_rOldPower : REAL;
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// Value to enable or dissable the Power limiting feature
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_uiMaxLimEn : UINT;
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// Value for commanding the target state of the inverter
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_uiPCSSetOperation : UINT;
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// Maximum reactive power
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_iMaxPowerVar : INT := 0;
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// Enable max reactive power percent controller
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_iMaxVarPct : INt := 1;
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// Holds the state number in which an error occured
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_iErrorInState : INT;
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// Time for polling for current dc values and check for inverter error
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_timPollingDelay : TIME := T#500MS;
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// Timer for polling of current values
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_tonPollingTimer : TON;
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// Current DC values (DCA, DCA_SF, DCV, DCV_SF, DCW, DCW_SF) in word array for efficient modbus reading
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_awCurrentDCValues : ARRAY[0..5] OF WORD;
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// Current AC values (W, W_SF, Hz, Hz_SF, VA, VA_SF, VAr, VAr_SF, PF, PF_SF) in word array for efficient modbus reading
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_awCurrentACValues : ARRAY[0..21] OF WORD;
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// Inverter error bits
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_dwErrorBits : DWORD;
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// Inverter reset errors command
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_uiResetInverter : UINT := 1;
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// PLC -> Inverter heartbeat
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_uiPLCToInverterCounter : UINT;
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// Inverter -> PLC heartbeat
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_uiInverterToPLCCounter : UINT;
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_uiInverterToPLCCounterOld : UINT;
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// Flag to check if inverter has incremented the heartbeat counter
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_xInverterHBCounterIncremented : BOOL := TRUE;
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// Inverter alarm
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_fbErrorInverterAlarm : FB_TcAlarm;
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// Heartbeat timeout
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_fbHeartbeatTimeout : TON;
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_sName : STRING;
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END_VAR
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VAR CONSTANT
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// Inverter statemachine status register
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// Size 1, enum16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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STATUS_REGISTER : WORD := 40108;
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// Throttled power register
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// Size 1, int16 (Range = -32767 .. 32767, Not implemented 0x8000)
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W_MAX_LIM_PCT_REGISTER : WORD := 40187;
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// Throttled power register scaling factor
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// Size 1, sunssf (int16) (Range = -10 .. 10, Not implemented 0x8000)
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W_MAX_LIM_PCT_SF_REGISTER : WORD := 40205;
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// Control register to enable and dissable if the power throttleing should be active
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// Size1, enum16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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W_MAX_LIM_EN_REGISTER : WORD := 40191;
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// Register to reset latched alarms in the inverter
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// Size 1, uint16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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PCS_ALARM_RESET_REGISTER : WORD := 40230;
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// Control register to set the target state of the inverters state machine
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// Size 1, enum16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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PCS_SET_OPERATION_REGISTER : WORD := 40231;
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// Maximum inverter output power
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// Size 1, uint16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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W_MAX_REGISTER : WORD := 40152;
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// Maximum inverter output power scaling factor
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// Size 1, sunssf (int16) (Range = -10 .. 10, Not implemented 0x8000)
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W_MAX_SF_REGISTER : WORD := 40172;
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// Maximum inverter output power from type label
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// Size 1, uint16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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W_RTG_REGISTER : WORD := 40125;
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// Maximum inverter output power from type label scaling factor
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// Size 1, sunssf (int16) (Range = -10 .. 10, Not implemented 0x8000)
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W_RTG_SF_REGISTER : WORD := 40126;
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// Start of register with the current dc values
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// Size 4
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DC_VALUES_START_REGISTER : WORD := 40097;
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// Start of register with the current ac values
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// SIZE 10
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AC_VALUES_START_REGISTER : WORD := 40072;
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// Power factor register in cosine of angle
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// Size 1, int16 (Range = -32767 .. 32767, Not implemented 0x8000)
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//OUT_PF_SET : WORD := 40192;
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// Enable power factor controller
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// Size 1, enum16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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//OUT_PF_SET_ENA : WORD := 40196;
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// Reactive power in percent of W_Max
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// Size 1, int16 (Range = -32767 .. 32767, Not implemented 0x8000)
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VAR_W_MAX_PCT : WORD := 40197;
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// Enable percent limited var controller
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// Size 1, enum16 (Range = 0 .. 65534, Not implemented = 0xFFFF)
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VAR_PCT_ENA : WORD := 40204;
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// Register for reactive power percent scaling factor
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// Size 1, sunssf (int16) (Range = -10 .. 10, Not implemented 0x8000)
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VAR_PCT_SF : WORD := 40207;
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// Error bits register
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// Size 2
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EVT_1_REGISTER : WORD := 40110;
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// PLC -> Inverter Heartbeat register
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CONTROLLER_HB : WORD := 40229;
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// Inverter -> PLC heartbeat register
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PCS_HB : WORD := 40228;
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END_VAR
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]]></Declaration>
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<Implementation>
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<ST><![CDATA[// Clamp rPower to maximum allowed power
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IF (rPower > rMaxBattPower) THEN
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rPower := rMaxBattPower;
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END_IF
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IF (rPower < -rMaxBattPower) THEN
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rPower := -rMaxBattPower;
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END_IF
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// State machine
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CASE _iState OF
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0: // Off
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IF _tonPollingTimer.Q THEN
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_tonPollingTimer(IN := FALSE, PT := _timPollingDelay);
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_iState := 1;
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END_IF
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// If enable and INTLK Ok
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IF xEnable THEN
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_iState := 10;
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_tonPollingTimer(IN := FALSE, PT := _timPollingDelay);
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ELSE
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_tonPollingTimer(IN := TRUE, PT := _timPollingDelay);
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END_IF
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1: // Read inverter status
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_fbReadRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 1,
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nMBAddr:= STATUS_REGISTER,
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cbLength:= SIZEOF(_uiInverterState),
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pDestAddr:= ADR(_uiInverterState),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> ,
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cbRead=> );
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// Check if reading mudbus register is done
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IF NOT _fbReadRegister.bBusy THEN
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IF NOT _fbReadRegister.bError THEN
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_iState := 2;
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ELSE
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_iState := 1000;
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END_IF
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_fbReadRegister(bExecute := FALSE);
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END_IF
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2: // IF inverter is not in STANDYB(8) STATE, send command to shutdown inverter
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IF (_uiInverterState = 8) OR (_uiInverterState = 1) OR (_uiInverterState = 7) THEN
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_iState := 3;
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ELSE
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_uiPCSSetOperation := 3;
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_iState := 200;
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END_IF
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3: // Read current DC values
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_iErrorInState := _iState;
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_fbReadRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 6,
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nMBAddr:= DC_VALUES_START_REGISTER,
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cbLength:= SIZEOF(_awCurrentDCValues),
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pDestAddr:= ADR(_awCurrentDCValues),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> ,
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cbRead=> );
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// Check if reading mudbus register is done
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IF NOT _fbReadRegister.bBusy THEN
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// If there was no error and the converter has no error continue
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IF NOT _fbReadRegister.bError THEN
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_iState := 4;
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stCurrentValues.rActDCCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentDCValues[0]) * EXPT(10,WORD_TO_INT(_awCurrentDCValues[1])));
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stCurrentValues.rActDCVoltage := LREAL_TO_REAL(WORD_TO_UINT(_awCurrentDCValues[2]) * EXPT(10,WORD_TO_INT(_awCurrentDCValues[3])));
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stCurrentValues.rActDCPower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentDCValues[4]) * EXPT(10,WORD_TO_INT(_awCurrentDCValues[5])));
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ELSE
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// Read error register
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_iState := 1000;
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END_IF
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_fbReadRegister(bExecute := FALSE);
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END_IF
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4: // Read current ac values
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_iErrorInState := _iState;
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_fbReadRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 22,
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nMBAddr:= AC_VALUES_START_REGISTER,
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cbLength:= SIZEOF(_awCurrentACValues),
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pDestAddr:= ADR(_awCurrentACValues),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> ,
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cbRead=> );
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// Check if reading mudbus register is done
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IF NOT _fbReadRegister.bBusy THEN
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// If there was no error and the converter has no error continue
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IF NOT _fbReadRegister.bError THEN
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// Go back to polling state
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_iState := 5;
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stCurrentValues.rActACCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[0]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
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stCurrentValues.rActtACPhaseACurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[1]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
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stCurrentValues.rActtACPhaseBCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[2]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
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stCurrentValues.rActtACPhaseCCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[3]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
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stCurrentValues.rActACPower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[12]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[13])));
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stCurrentValues.rActACFreq := LREAL_TO_REAL(WORD_TO_UINT(_awCurrentACValues[14]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[15])));
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stCurrentValues.rActApparentPower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[16]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[17])));
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stCurrentValues.rActReactivePower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[18]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[19])));
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stCurrentValues.rActPowerFactor := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[20]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[21])));
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ELSE
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// Read error register
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_iState := 1000;
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END_IF
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_fbReadRegister(bExecute := FALSE);
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END_IF
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5: // Send heartbeat signal
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_uiPLCToInverterCounter := _uiPLCToInverterCounter + 1;
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_iErrorInState := _iState;
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_fbWriteRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 1,
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nMBAddr:= CONTROLLER_HB,
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cbLength:= SIZEOF(_uiPLCToInverterCounter),
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pSrcAddr:= ADR(_uiPLCToInverterCounter),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> );
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// If writing modbus register is done
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IF NOT _fbWriteRegister.bBusy THEN
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// And there is no error, then continue
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IF NOT _fbWriteRegister.bError THEN
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_iState := 6;
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ELSE
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xError := TRUE;
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// Goto error state
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_iState := 1000;
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END_IF
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_fbWriteRegister(bExecute := FALSE);
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END_IF
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6: // Check heartbeat signal
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_fbReadRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 1,
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nMBAddr:= PCS_HB,
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cbLength:= SIZEOF(_uiInverterToPLCCounter),
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pDestAddr:= ADR(_uiInverterToPLCCounter),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> ,
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cbRead=> );
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IF NOT _fbReadRegister.bBusy THEN
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IF (NOT _fbReadRegister.bError) THEN
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// Check if counter has been incremented by the inverter
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IF (_uiInverterToPLCCounter - _uiInverterToPLCCounterOld) > 0 THEN
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_xInverterHBCounterIncremented := TRUE;
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// Safe old value
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_uiInverterToPLCCounterOld := _uiInverterToPLCCounter;
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ELSE
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_xInverterHBCounterIncremented := FALSE;
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END_IF
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_iState := 0;
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ELSE
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xError := TRUE;
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// Goto error state
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_iState := 1000;
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END_IF
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_fbReadRegister(bExecute := FALSE);
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END_IF
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10: // Wait for inverter to be online and in state STANDBY(8)
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_fbReadRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 1,
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nMBAddr:= STATUS_REGISTER,
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cbLength:= SIZEOF(_uiInverterState),
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pDestAddr:= ADR(_uiInverterState),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> ,
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cbRead=> );
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// Check if reading mudbus register is done
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IF NOT _fbReadRegister.bBusy THEN
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// If there was no error and the state is STANDBY(8) then continue
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IF NOT _fbReadRegister.bError AND _uiInverterState = 8 THEN
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_iState := 20;
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END_IF
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// If the inverter is not ready wait some time before polling again
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IF NOT _fbReadRegister.bError AND _uiInverterState <> 8 THEN
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_iState := 15;
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END_IF
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_fbReadRegister(bExecute := FALSE);
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END_IF
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// If not enable, go back to idle
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IF NOT xEnable THEN
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_fbReadRegister(bExecute := FALSE);
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_iState := 0;
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END_IF
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15: // Delay polling inverter ready
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_tonPollingTimer(IN := TRUE, PT := _timPollingDelay);
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IF _tonPollingTimer.Q THEN
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_tonPollingTimer(IN := FALSE);
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_iState := 10;
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END_IF
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// If not enable, go back to idle
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IF NOT xEnable THEN
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_tonPollingTimer(IN := FALSE);
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_iState := 0;
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END_IF
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20: // Read inverter max power scaling
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_iErrorInState := _iState;
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_fbReadRegister(
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sIPAddr:= sInverterIPAddr,
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nTCPPort:= 502,
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nUnitID:= 16#FF, // 16#FF for Modbus TCP
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nQuantity:= 1,
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nMBAddr:= W_MAX_SF_REGISTER,
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cbLength:= SIZEOF(_iWMaxSF),
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pDestAddr:= ADR(_iWMaxSF),
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bExecute:= TRUE,
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tTimeout:= T#5S,
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bBusy=> ,
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bError=> ,
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nErrId=> ,
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cbRead=> );
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// Check if reading mudbus register is done
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IF NOT _fbReadRegister.bBusy THEN
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// If there was no error then continue
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IF NOT _fbReadRegister.bError THEN
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_iState := 25;
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// Check for valid value
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IF (_iWMaxSF < -10) OR (_iWMaxSF > 10) OR (_iWMaxSF = 16#8000) THEN
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ADSLOGSTR(msgCtrlMask := ADSLOG_MSGTYPE_HINT, msgFmtStr := 'FBInverter into error state from: %s', strArg := TO_STRING(_iState));
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// Goto error state
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_iState := 1000;
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END_IF
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ELSE
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xError := TRUE;
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// Goto error state
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_iState := 1000;
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END_IF
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_fbReadRegister(bExecute := FALSE);
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END_IF
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|
|
|
|
25: // Read inverter Max power limit scaling
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= W_MAX_LIM_PCT_SF_REGISTER,
|
|
cbLength:= SIZEOF(_iWMaxLimPctSF),
|
|
pDestAddr:= ADR(_iWMaxLimPctSF),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error then continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 30;
|
|
// Check for valid value
|
|
IF (_iWMaxLimPctSF < -10) OR (_iWMaxLimPctSF > 10) OR (_iWMaxLimPctSF = 16#8000) THEN
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
26: // Read inverter scaling factor for reactive power
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= VAR_PCT_SF,
|
|
cbLength:= SIZEOF(_iVarPctSF),
|
|
pDestAddr:= ADR(_iVarPctSF),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error then continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 30;
|
|
// Check for valid value
|
|
IF (_iVarPctSF < -10) OR (_iVarPctSF > 10) OR (_iVarPctSF = 16#8000) THEN
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
30: // Read inverter max power
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= W_MAX_REGISTER,
|
|
cbLength:= SIZEOF(_uiWMax),
|
|
pDestAddr:= ADR(_uiWMax),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error then continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 40;
|
|
// Reading a register with scaling factor = value * 10^SF
|
|
_rWMax := LREAL_TO_REAL(_uiWMax * EXPT(10,_iWMaxSF));
|
|
|
|
// Calculate power to write to register
|
|
_iWMaxLimPct := LREAL_TO_INT((rPower*100)/(_rWMax * EXPT(10,_iWMaxLimPctSF)));
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
40: // Set power limit
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= W_MAX_LIM_PCT_REGISTER,
|
|
cbLength:= SIZEOF(_iWMaxLimPct),
|
|
pSrcAddr:= ADR(_iWMaxLimPct),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 50;
|
|
_rOldPower := rPower;
|
|
_uiMaxLimEn := 1;
|
|
// Calculate reactive power setting
|
|
//_iMaxPowerVar := LREAL_TO_INT((rReactivePower*100)/(_iMaxPowerVar * EXPT(10,_iVarPctSF)));
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
41: // Set max reactive power in percent
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= VAR_W_MAX_PCT,
|
|
cbLength:= SIZEOF(_iMaxPowerVar),
|
|
pSrcAddr:= ADR(_iMaxPowerVar),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 42;
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
42: // Enable reactive power percent limiting
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= VAR_PCT_ENA,
|
|
cbLength:= SIZEOF(_iMaxVarPct),
|
|
pSrcAddr:= ADR(_iMaxVarPct),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 50;
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
50: // Enable Power limiting (THROTTLED)
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= W_MAX_LIM_EN_REGISTER,
|
|
cbLength:= SIZEOF(_uiMaxLimEn),
|
|
pSrcAddr:= ADR(_uiMaxLimEn),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 51;
|
|
_uiPCSSetOperation := 4;
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
51: // Go to started
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= PCS_SET_OPERATION_REGISTER,
|
|
cbLength:= SIZEOF(_uiPCSSetOperation),
|
|
pSrcAddr:= ADR(_uiPCSSetOperation),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_uiPCSSetOperation := 1;
|
|
_iState := 60;
|
|
ELSE
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
60: // Switch to THROTTLED mode
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= PCS_SET_OPERATION_REGISTER,
|
|
cbLength:= SIZEOF(_uiPCSSetOperation),
|
|
pSrcAddr:= ADR(_uiPCSSetOperation),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 65;
|
|
ELSE
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
65: // Wait for polling timer
|
|
_tonPollingTimer(IN := TRUE, PT := _timPollingDelay);
|
|
IF _tonPollingTimer.Q THEN
|
|
_tonPollingTimer(IN := FALSE);
|
|
_iState := 70;
|
|
ELSIF ABS(rPower - _rOldPower) > 0.1 THEN
|
|
_tonPollingTimer(IN := FALSE);
|
|
// If power has ben changed, goto set power limit mode
|
|
_iState := 40;
|
|
// Calculate power to write to register
|
|
_iWMaxLimPct := LREAL_TO_INT((rPower*100)/(_rWMax * EXPT(10,_iWMaxLimPctSF)));
|
|
END_IF
|
|
|
|
// check if inverter should shut down
|
|
IF NOT xEnable THEN
|
|
_uiPCSSetOperation := 3;
|
|
// Goto shutdown sequence
|
|
_iState := 200;
|
|
END_IF
|
|
|
|
|
|
70: // Enabled, check for error
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= STATUS_REGISTER,
|
|
cbLength:= SIZEOF(_uiInverterState),
|
|
pDestAddr:= ADR(_uiInverterState),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error and the converter has no error continue
|
|
IF NOT _fbReadRegister.bError AND (_uiInverterState <> 7) THEN
|
|
_iState := 80;
|
|
IF (_uiInverterState = 4) OR (_uiInverterState = 5) THEN
|
|
xActive := TRUE;
|
|
ELSE
|
|
xActive := FALSE;
|
|
END_IF
|
|
ELSE
|
|
xError := TRUE;
|
|
_uiPCSSetOperation := 3;
|
|
// Read error register
|
|
_iState := 200;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
80: // Read current DC values
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 6,
|
|
nMBAddr:= DC_VALUES_START_REGISTER,
|
|
cbLength:= SIZEOF(_awCurrentDCValues),
|
|
pDestAddr:= ADR(_awCurrentDCValues),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error and the converter has no error continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 85;
|
|
stCurrentValues.rActDCCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentDCValues[0]) * EXPT(10,WORD_TO_INT(_awCurrentDCValues[1])));
|
|
stCurrentValues.rActDCVoltage := LREAL_TO_REAL(WORD_TO_INT(_awCurrentDCValues[2]) * EXPT(10,WORD_TO_INT(_awCurrentDCValues[3])));
|
|
stCurrentValues.rActDCPower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentDCValues[4]) * EXPT(10,WORD_TO_INT(_awCurrentDCValues[5])));
|
|
ELSE
|
|
// Read error register
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
85: // Read current ac values
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 22,
|
|
nMBAddr:= AC_VALUES_START_REGISTER,
|
|
cbLength:= SIZEOF(_awCurrentACValues),
|
|
pDestAddr:= ADR(_awCurrentACValues),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error and the converter has no error continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
// Go back to polling state
|
|
_iState := 90;
|
|
stCurrentValues.rActACCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[0]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
|
|
stCurrentValues.rActtACPhaseACurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[1]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
|
|
stCurrentValues.rActtACPhaseBCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[2]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
|
|
stCurrentValues.rActtACPhaseCCurrent := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[3]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[4])));
|
|
stCurrentValues.rActACPower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[12]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[13])));
|
|
stCurrentValues.rActACFreq := LREAL_TO_REAL(WORD_TO_UINT(_awCurrentACValues[14]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[15])));
|
|
stCurrentValues.rActApparentPower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[16]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[17])));
|
|
stCurrentValues.rActReactivePower := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[18]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[19])));
|
|
stCurrentValues.rActPowerFactor := LREAL_TO_REAL(WORD_TO_INT(_awCurrentACValues[20]) * EXPT(10,WORD_TO_INT(_awCurrentACValues[21])));
|
|
ELSE
|
|
// Read error register
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
90: // Read current inverter status
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= STATUS_REGISTER,
|
|
cbLength:= SIZEOF(_uiInverterState),
|
|
pDestAddr:= ADR(_uiInverterState),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 91;
|
|
stCurrentValues.uiStatus := _uiInverterState;
|
|
ELSE
|
|
// Read error register
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
91: // Send heartbeat signal
|
|
_uiPLCToInverterCounter := _uiPLCToInverterCounter + 1;
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= CONTROLLER_HB,
|
|
cbLength:= SIZEOF(_uiPLCToInverterCounter),
|
|
pSrcAddr:= ADR(_uiPLCToInverterCounter),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 92;
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
92: // Check heartbeat signal
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= PCS_HB,
|
|
cbLength:= SIZEOF(_uiInverterToPLCCounter),
|
|
pDestAddr:= ADR(_uiInverterToPLCCounter),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
IF (NOT _fbReadRegister.bError) THEN
|
|
// Check if counter has been incremented by the inverter
|
|
IF (_uiInverterToPLCCounter - _uiInverterToPLCCounterOld) > 0 THEN
|
|
_xInverterHBCounterIncremented := TRUE;
|
|
|
|
// Safe old value
|
|
_uiInverterToPLCCounterOld := _uiInverterToPLCCounter;
|
|
ELSE
|
|
_xInverterHBCounterIncremented := FALSE;
|
|
END_IF
|
|
|
|
_iState := 65;
|
|
ELSE
|
|
xError := TRUE;
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
200: // Shutdown sequence
|
|
_iErrorInState := _iState;
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= PCS_SET_OPERATION_REGISTER,
|
|
cbLength:= SIZEOF(_uiPCSSetOperation),
|
|
pSrcAddr:= ADR(_uiPCSSetOperation),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
// If writing modbus register is done
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
// And there is no error, then continue
|
|
IF NOT _fbWriteRegister.bError THEN
|
|
_iState := 210;
|
|
ELSE
|
|
// Goto error state
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
210: // Wait for poll timer to
|
|
_tonPollingTimer(IN := TRUE, PT := _timPollingDelay);
|
|
IF _tonPollingTimer.Q THEN
|
|
_tonPollingTimer(IN := FALSE);
|
|
_iState := 220;
|
|
END_IF
|
|
|
|
|
|
220: // Poll and wait for standby state
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= STATUS_REGISTER,
|
|
cbLength:= SIZEOF(_uiInverterState),
|
|
pDestAddr:= ADR(_uiInverterState),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error and the converter has no error continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 0;
|
|
xActive := FALSE;
|
|
//xCloseDCRelais := FALSE;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
990: // Read error register
|
|
_iErrorInState := _iState;
|
|
_fbReadRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 2,
|
|
nMBAddr:= EVT_1_REGISTER,
|
|
cbLength:= SIZEOF(_dwErrorBits),
|
|
pDestAddr:= ADR(_dwErrorBits),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> ,
|
|
cbRead=> );
|
|
|
|
// Check if reading mudbus register is done
|
|
IF NOT _fbReadRegister.bBusy THEN
|
|
// If there was no error and the converter has no error continue
|
|
IF NOT _fbReadRegister.bError THEN
|
|
_iState := 1000;
|
|
END_IF
|
|
_fbReadRegister(bExecute := FALSE);
|
|
END_IF
|
|
|
|
|
|
1000: // Error state, wait for reset
|
|
IF xReset AND (NOT xEnable) THEN
|
|
_iState := 1010;
|
|
END_IF
|
|
|
|
|
|
1010: // Try to clear all latched events
|
|
_fbWriteRegister(
|
|
sIPAddr:= sInverterIPAddr,
|
|
nTCPPort:= 502,
|
|
nUnitID:= 16#FF, // 16#FF for Modbus TCP
|
|
nQuantity:= 1,
|
|
nMBAddr:= PCS_ALARM_RESET_REGISTER,
|
|
cbLength:= SIZEOF(_uiResetInverter),
|
|
pSrcAddr:= ADR(_uiResetInverter),
|
|
bExecute:= TRUE,
|
|
tTimeout:= T#5S,
|
|
bBusy=> ,
|
|
bError=> ,
|
|
nErrId=> );
|
|
|
|
IF NOT _fbWriteRegister.bBusy THEN
|
|
_iState := 0;
|
|
xError := FALSE;
|
|
_fbWriteRegister(bExecute := FALSE);
|
|
END_IF
|
|
END_CASE
|
|
|
|
|
|
// ===============================
|
|
// Heartbeat check
|
|
// ===============================
|
|
_fbHeartbeatTimeout(IN := (NOT _xInverterHBCounterIncremented), PT := T#5S);
|
|
|
|
// Reset heartbeat ok signal
|
|
IF xReset AND (NOT _fbHeartbeatTimeout.Q) THEN
|
|
xHeartbeatOk := TRUE;
|
|
END_IF
|
|
|
|
// Check for heartbeat
|
|
IF _fbHeartbeatTimeout.Q THEN
|
|
xHeartbeatOk := FALSE;
|
|
END_IF
|
|
|
|
|
|
// ===============================
|
|
// Inverter alarm handling
|
|
// ===============================
|
|
|
|
IF xError AND (NOT _fbErrorInverterAlarm.bRaised) THEN
|
|
_fbErrorInverterAlarm.Raise(0);
|
|
END_IF
|
|
|
|
IF (NOT xError) AND _fbErrorInverterAlarm.bRaised THEN
|
|
_fbErrorInverterAlarm.Clear(0, FALSE);
|
|
END_IF
|
|
|
|
IF (_fbErrorInverterAlarm.eConfirmationState = TcEventConfirmationState.WaitForConfirmation) AND xReset THEN
|
|
_fbErrorInverterAlarm.Confirm(0);
|
|
END_IF]]></ST>
|
|
</Implementation>
|
|
<Method Name="FB_init" Id="{a80728a8-68c7-4f6a-87fc-246cb88104d4}">
|
|
<Declaration><![CDATA[METHOD FB_init : BOOL
|
|
VAR_INPUT
|
|
bInitRetains : BOOL; // if TRUE, the retain variables are initialized (warm start / cold start)
|
|
bInCopyCode : BOOL; // if TRUE, the instance afterwards gets moved into the copy code (online change)
|
|
|
|
sName : STRING;
|
|
END_VAR
|
|
]]></Declaration>
|
|
<Implementation>
|
|
<ST><![CDATA[_sName := sName;
|
|
|
|
// Create inverter main alarm
|
|
_fbErrorInverterAlarm.CreateEx(stEventEntry := TC_EVENTS.Inverter.InverterError, bWithConfirmation := TRUE, 0);
|
|
_fbErrorInverterAlarm.ipArguments.Clear().AddString(_sName);]]></ST>
|
|
</Implementation>
|
|
</Method>
|
|
<Property Name="Name" Id="{ef8c6e8f-7c1b-4781-b201-87f759acb289}">
|
|
<Declaration><![CDATA[PROPERTY Name : string]]></Declaration>
|
|
<Get Name="Get" Id="{bc17161e-727d-4abd-a845-a7eacc08f995}">
|
|
<Declaration><![CDATA[VAR
|
|
END_VAR
|
|
]]></Declaration>
|
|
<Implementation>
|
|
<ST><![CDATA[Name := _sName;]]></ST>
|
|
</Implementation>
|
|
</Get>
|
|
<Set Name="Set" Id="{7fdecf53-efe5-43de-bc46-5f24fb6a7ffb}">
|
|
<Declaration><![CDATA[VAR
|
|
END_VAR
|
|
]]></Declaration>
|
|
<Implementation>
|
|
<ST><![CDATA[_sName := Name;
|
|
|
|
_fbErrorInverterAlarm.ipArguments.Clear().AddString(_sName);]]></ST>
|
|
</Implementation>
|
|
</Set>
|
|
</Property>
|
|
</POU>
|
|
</TcPlcObject> |