///
/// Copyright (c) 2013-2017 Sensus Metering Systems
///
using System;
using System.Text;
using System.IO.Ports;
using System.Collections.Generic;
using Config.Entities;
using Dirichlet.Numerics;
using TBF.BenchControl.Generic;
using TBF.BenchControl.GenericDevices;
using log4net;
namespace TBF.BenchControl.Elde
{
public class ControlBoardDev : ComponentBase, IDevice, IValveControl
{
private static readonly ILog log = LogManager.GetLogger(typeof(ControlBoardDev));
public override string ToString() { return string.Format("ControlBoard({0})", Cfg.ToString(1)); }
readonly ControlBoardCfg controlBoardCfg;
///
/// Reference to the control board component
///
IControlCom controlCom;
///
/// Emergency stop signal state updated by RunDevice().
/// 'modelessDlg' is notified about the changes and uses this information to change its visibility.
///
//UiBridge.EmergencyStopEventArgs.State emergencyStopState;
///
/// Public read only wrappers for Elde software component fields
///
/// rvNr1 = 1 .. nrRegulValves (one based)
/// wmNr0 = 0 .. nrWaterMeters-1 (zero based)
/// tmpNr0 = 0 .. nrTempMeters-1 (zero based)
/// prsNr0 = 0 .. nrPressureMeters-1 (zero based)
///
public StatusP StatusP { get { return controlCom.StatusP; } }
public int EtPulses(int wmNr1) { return controlCom.EtPulses(wmNr1); }
public int EtPulsesK { get { return controlCom.EtPulsesK; } }
public UInt16 WMeterPulses(int wmNr1) { return controlCom.WMeterPulses(wmNr1); }
public int WMeterReference(int wmNr0) { return controlCom.WMeterReference(wmNr0); }
public uint RegulValveDAC(int rvNr0) { return controlCom.RegulValveDAC(rvNr0); }
public float Pressure(int prsNr0) { return controlCom.Pressure(prsNr0); }
public float Temperature(int tmpNr0) { return controlCom.Temperature(tmpNr0); }
public RegulValveState RegulValveState(int rvNr1) { return (RegulValveState)controlCom.RegulValveState(rvNr1); }
public UInt128 RRoute { get { return controlCom.RRoute; } }
public uint DivTime(int id) { return controlCom.DivTime(id); }
public float TTime { get { return controlCom.TTime; } }
public float ImpulseTime(int wmNr1) { return controlCom.ImpulseTime(wmNr1); }
public uint FmState { get { return controlCom.FmState; } }
public uint BeginState(int wmNr0) { return controlCom.BeginState(wmNr0); }
public double ReferenceFreq { get { return controlCom.ReferenceFreq; } } /// In [Hz] 0..2500, nom.=2000
public double ReferenceFreqs(int i) { return controlCom.ReferenceFreqs(i); }
public double ReferenceFlow { get { return controlCom.ReferenceFlow; } }
public float RValvePosition(int rvNr1) { return controlCom.RValvePosition(rvNr1); }
public float DivSamples(int time, int divIx0) { return controlCom.DivSamples(time, divIx0); } /// Time unit is 2 ms
public int ScopeSamples(int i, int j, int k) { return controlCom.ScopeSamples(i, j, k); }
public ulong DigitalInputs { get { return controlCom.DigitalInputs; } }
public float AnalogInput(int adcNr0) { return controlCom.AnalogInput(adcNr0); }
public uint AnalogInputRaw(int adcNr0, int bank) { return controlCom.AnalogInputRaw(adcNr0, bank); } /// adcNr0: 0=RV1, 1=RV2,... bank: 0=RV, 1=Temp
public float ReferenceVolume { get { return controlCom.TotalRefVolume; } }
public float VyslExt(int wmNr0, int what) { return controlCom.VyslExt(wmNr0, what); }
public uint[] CyclePar { get { return controlCom.CyclePar; } set { controlCom.CyclePar = value; } }
public uint[] WMeterCont { get { return controlCom.WMeterCont; } }
public bool ManualUIAllowed { get { return controlCom.ManualUIAllowed; } set { controlCom.ManualUIAllowed = value; } }
public float ValveOpenCloseTime { get { return controlCom.ValveOpenCloseTime; } }
/// Extracted from the StatusP in RunDeviceBefore
public bool EmergencyStop { get { return emergencyStop; } }
bool emergencyStop;
bool previousEmergencyStop;
private int flowmeterNr4DiverterTest;
private bool scheduleDiverterToTank;
private bool scheduleDiverterToSink;
private bool scheduleReadDiverterTransition;
private bool pumpPowerChanged;
///
public void DiverterToTank(int flowmeterNr)
{
if (!scheduleDiverterToSink && !scheduleReadDiverterTransition && !emergencyStop)
{
flowmeterNr4DiverterTest = flowmeterNr;
scheduleDiverterToTank = true;
}
}
///
public void DiverterToSink(int flowmeterNr)
{
if (!scheduleDiverterToTank && !scheduleReadDiverterTransition && !emergencyStop)
{
flowmeterNr4DiverterTest = flowmeterNr;
scheduleDiverterToSink = true;
}
}
///
public void ReadDiverterTransition(int flowmeterNr)
{
if (!scheduleDiverterToTank && !scheduleDiverterToSink && !emergencyStop)
{
flowmeterNr4DiverterTest = flowmeterNr;
scheduleReadDiverterTransition = true;
}
}
/// State of valves sent out - buffered by the last SendCommand()
public UInt128 Route { get { return benchModelRoute; } }
UInt128 valvesToInvert; /// Route = valesToInvert ^ RequiredRouteWithoutInvertedVlaves
readonly UInt128 routeMask; /// This mask masks out virtual valves, routeMask is set in the constructor
///
/// Initialization data updated by constructors of children components
/// and sent to 'controlCom2panel' by SendCalibData() method.
///
#if DEWA_300
public float[,] TempCalibData = new float[16, 5];
#else
public float[,] TempCalibData = new float[8, 5];
#endif
public uint[] DiverterEdge; /// Created and initialized in this.Initialize()
public byte MeretProtocol = 0;
// Array length is the reference flowmeters count plus one
#if DN100 || FUZHOU_150 || FUZHOU_300 || IZRAEL_200 || SLM_150 || SENTEC || CEVAK_200
public uint[,] RegValveCalib = new uint[8,2] {{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500}};
public byte[] MeretRS485Address = new byte[4];
public float[] EtCalib = new float[6] { 1, 1, 1, 1, 1, 1 };
#elif PUCHONG_200 || GENESIS || BERLIN || PETERSBURG_200 || RUM_MOB
public uint[,] RegValveCalib = new uint[16, 2] { {100,500}, {100,500}, {100,500}, {100,500},
{100,500}, {100,500}, {100,500}, {100,500},
{100,500}, {100,500}, {100,500}, {100,500},
{100,500}, {100,500}, {100,500}, {100,500} };
public byte[] MeretRS485Address = new byte[4];
public float[] EtCalib = new float[7] { 1, 1, 1, 1, 1, 1, 1 };
#elif DEWA_300
public uint[,] RegValveCalib = new uint[16, 2] { {100,500}, {100,500}, {100,500}, {100,500},
{100,500}, {100,500}, {100,500}, {100,500},
{100,500}, {100,500}, {100,500}, {100,500},
{100,500}, {100,500}, {100,500}, {100,500} };
public byte[] MeretRS485Address = new byte[4];
public float[] EtCalib = new float[8] { 1, 1, 1, 1, 1, 1, 1, 1 };
#elif MUNICH || TORINO_50 || BADGER_MALA_TRAT || BADGER_STREDNA_TRAT || TORUN_50 || CEVAK_40 || TURA_IPERL || TURA_IPERL_NEW || TURA_SPECIAL || MURES_40 || FUZHOU_50 || SLM_50 || PETERSBURG_50 || KEMPNO_50 || BAHRAIN_50 || KRAKOW_50 || JUZNA_AFRIKA_50 || IZRAEL_25 || ZAMBIA || ZODINO || FEWA_50 || FILIPINY_50 || FUZHOU_100
public uint[,] RegValveCalib = new uint[8,2] {{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500}};
public byte[] MeretRS485Address = new byte[4];
public float[] EtCalib = new float[5] { 1, 1, 1, 1, 1 };
#elif IZRAEL_50 || SLM_END
public uint[,] RegValveCalib = new uint[8,2] {{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500}};
public byte[] MeretRS485Address = new byte[7]; /// Modbus addresses of Pr1, Pr2, Pr3, Pr4, Pr5, Pr6, T9 (Izrael) or Pr1, Pr2, Pr3, Pr4, T9, T10 (SLM END)
public float[] EtCalib = new float[5] { 1, 1, 1, 1, 1 };
#elif WARSAW_END
public uint[,] RegValveCalib = new uint[8,2] {{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500}};
public byte[] MeretRS485Address = new byte[4];
public float[] EtCalib = new float[5] { 1, 1, 1, 1, 1 };
#elif MALTA_WSD25
public uint[,] RegValveCalib = new uint[8,2] {{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500}};
public byte[] MeretRS485Address = new byte[12];
public float[] EtCalib = new float[9] { 1, 1, 1, 1, 1, 1, 1, 1, 1 };
#elif BADGER_VELKA_TRAT
public uint[,] RegValveCalib = new uint[8,2] {{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500},{100,500}};
public byte[] MeretRS485Address = new byte[4];
public float[] EtCalib = new float[8] { 1, 1, 1, 1, 1, 1, 1, 1 };
#endif
public uint[] BalanceRange = new uint[2];
///
/// Private values sent by the last SendCommand()
///
bool sendCommandFlag;
Command cmd;
int refNr;
UInt128 benchModelRoute;
int totalRefPulses;
int massRefPulses;
TestMethods testMethods;
int[] filters;
float[] FMFreq;
int regConst;
int shortImp;
StopDevs stopDevs;
///
/// Set values to be applied during a test
///
/// Filters for meter pulses
/// PID coefficient for flow control
/// Short pulses mode (0 = off)
public void SetFiltersPidShortPulses(int[] filters, float pid, int shortPulses)
{
this.filters = filters;
this.regConst = (int)pid;
this.shortImp = shortPulses;
}
///
/// Sets the power of the selected pump
///
/// Pump index 0 .. 5, invalid pump index sets all pumps to 0%
/// Power (0.0f .. 100.0f)
public void SetFMFreq(int index, float power)
{
#if DN100 || MUNICH || FUZHOU_150
if ((FMFreq == null) || (FMFreq.Length != 2))
{
FMFreq = new float[2];
pumpPowerChanged = true; /// Forces sending a command using Command.None
}
#elif SLM_END || WARSAW_END
if ((FMFreq == null) || (FMFreq.Length != 4))
{
FMFreq = new float[4];
pumpPowerChanged = true; /// Forces sending a command using Command.None
}
#else /// all newer benches
if ((FMFreq == null) || (FMFreq.Length != 6))
{
FMFreq = new float[6];
pumpPowerChanged = true; /// Forces sending a command using Command.None
}
#endif
if (index >= 0 && index < FMFreq.Length && FMFreq[index] != power)
{
FMFreq[index] = power;
pumpPowerChanged = true; /// Forces sending a command using Command.None
log.DebugFormat("FMFreq=[{0}{1}{2}{3}{4}{5}]",
FMFreq[0].ToString(),
(FMFreq.Length > 1) ? ("," + FMFreq[1].ToString()) : "",
(FMFreq.Length > 2) ? ("," + FMFreq[2].ToString()) : "",
(FMFreq.Length > 3) ? ("," + FMFreq[3].ToString()) : "",
(FMFreq.Length > 4) ? ("," + FMFreq[4].ToString()) : "",
(FMFreq.Length > 5) ? ("," + FMFreq[5].ToString()) : "");
}
}
public void UpdateWeights()
{
/// Mettler-Toledo scales
for (int i = 0; i < MettlerToledo.Standard.BalanceDev.BalancesCount; i++)
{
controlCom.SetWeight(i, MettlerToledo.Standard.BalanceDev.Masses[i]);
}
/// Mettler-Toledo-multi scales (Badger Brno, ...)
for (int i = 0; i < MettlerToledo.Multi.BalanceDev.BalancesCount; i++)
{
controlCom.SetWeight(i, MettlerToledo.Multi.BalanceDev.Masses[i]);
}
/// Tanks (CEVAK, ...)
int firstTankIx = Math.Max(MettlerToledo.Standard.BalanceDev.BalancesCount, MettlerToledo.Multi.BalanceDev.BalancesCount);
for (int i = 0; i < Various.TankWithLevelMsrmnt.Tank.TanksCount; i++)
{
controlCom.SetWeight(firstTankIx + i, Various.TankWithLevelMsrmnt.Tank.Tanks[i].Volume);
}
}
public void SetReservoirTemp(int nr, float temp)
{
controlCom.SetReservoirTemp(nr, temp);
}
public ControlBoardDev()
{
}
///
/// Constructor
///
public ControlBoardDev(Generic.IComponentCfg cfg)
: base(cfg)
{
controlBoardCfg = cfg as ControlBoardCfg;
#if DN100 || MUNICH || FUZHOU_150
FMFreq = new float[2] { 0, 0 }; /// Nr. of pumps: Fuzhou150=2, Fuzhou300=6, newer=6
#elif SLM_END || WARSAW_END
FMFreq = new float[4] { 0, 0, 0, 0 };
#else /// all newer benches
FMFreq = new float[6] { 0, 0, 0, 0, 0, 0 };
#endif
emergencyStop = false;
previousEmergencyStop = false;
routeMask = 0;
for (int i = 0; i < 128; i++)
{
if (i < controlBoardCfg.VirtualValvesRangeLo || i > controlBoardCfg.VirtualValvesRangeHi)
{
routeMask = routeMask | ((UInt128)1 << i);
}
}
log.Debug(this.ToString());
}
///
/// Specific pre-initialization for control board only
///
///
public void InitializeComponent(
#if DN100
ControlCom2VB.ControlCom2panel ctrlBrdComponent,
#elif MUNICH || FUZHOU_150
ControlComponent3Munich.UserControl1 ctrlBrdComponent,
#elif FUZHOU_300
ControlComponent3F300.UserControl1 ctrlBrdComponent,
#elif IZRAEL_200 || PUCHONG_200 || GENESIS || BERLIN || SLM_150 || PETERSBURG_200
ControlComponent_Izrael2014.UserControl1 ctrlBrdComponent,
#else /// all newer benches
ControlComponent_Torino2015.UserControl1 ctrlBrdComponent,
#endif
UInt128 valvesToInvert,
double[] tankCapacities)
{
this.valvesToInvert = valvesToInvert;
this.benchModelRoute = valvesToInvert;
if (controlBoardCfg.DebugLevel == DebugMode.Simulate)
{
controlCom = new ControlComSim();
}
else
{
/// Default number of scales (and BalanceRange length) is 2.
/// If there are more scales, BalanceRange length is larger.
int scalesCnt = Math.Max(2, tankCapacities.Length);
BalanceRange = new uint[scalesCnt];
for (int i = 0; i < scalesCnt; i++)
{
BalanceRange[i] = (uint)((i < tankCapacities.Length) ? tankCapacities[i] : 0);
}
controlCom = new ControlComWrap(ctrlBrdComponent);
}
}
/// Initialize this device
public void Initialize()
{
int divertersCount = BenchControl.Elde.Diverter.Diverter.DivertersCount;
DiverterEdge = new uint[divertersCount];
for (int i = 0; i < divertersCount; i++)
{
DiverterEdge[i] = (uint)BenchControl.Elde.Diverter.Diverter.Diverters[i].ThresholdGate;
controlCom.SetDivLimit(i, (uint)BenchControl.Elde.Diverter.Diverter.Diverters[i].ThresholdLo,
(uint)BenchControl.Elde.Diverter.Diverter.Diverters[i].ThresholdHi);
}
controlCom.SendCalibData(RegValveCalib,
MeretRS485Address,
controlBoardCfg.ComPortNr,
TempCalibData,
EtCalib,
DiverterEdge,
BalanceRange,
MeretProtocol);
log.FatalFormat("Successfully initialized device {0}", ToString());
}
/// Run this device
public void RunDeviceBefore()
{
if (DebugLevel == DebugMode.Simulate) return;
controlCom.RunDeviceBefore();
previousEmergencyStop = emergencyStop;
emergencyStop = (controlCom.StatusP & StatusP.EmgcyStopActive) != 0;
if (emergencyStop && !previousEmergencyStop)
{
Program.MainWnd.Invoke(new ShowEmergencyStopFormDlgt(ShowEmergencyStopForm));
/// Stop the cycle - Press 'STOP' button in the BenchControlPanel
TBF.UiBridge.Bridge.Ui2Bench(TBF.UiBridge.UI2BenchCmd.Stop);
}
else if (!emergencyStop && previousEmergencyStop)
{
UiBridge.Bridge.OnEmergencyStopChanged(this,UiBridge.EmergencyStopEventArgs.State.CloseForm);
}
if (emergencyStop)
{
/// SendCommand() arguments to clear the emergency stop state
sendCommandFlag = true;
this.refNr = 0;
this.totalRefPulses = 0;
this.massRefPulses = 0;
this.cmd = Command.Stop;
this.testMethods = 0;
this.stopDevs = StopDevs.All;
}
else if (scheduleDiverterToTank)
{
/// Reset all SendCommand() arguments
sendCommandFlag = true;
this.cmd = Command.Start;
this.refNr = flowmeterNr4DiverterTest;
this.totalRefPulses = int.MaxValue;
this.massRefPulses = int.MaxValue;
this.testMethods = TestMethods.Diverter;
this.stopDevs = 0;
scheduleDiverterToTank = false;
}
else if (scheduleDiverterToSink)
{
/// Reset all SendCommand() arguments
sendCommandFlag = true;
this.cmd = Command.Stop;
this.refNr = flowmeterNr4DiverterTest;
this.totalRefPulses = 0;
this.massRefPulses = 0;
this.testMethods = TestMethods.Diverter;
this.stopDevs = StopDevs.Diverter;
scheduleDiverterToSink = false;
}
else if (scheduleReadDiverterTransition)
{
/// Reset all SendCommand() arguments
sendCommandFlag = true;
this.cmd = Command.ReadDivTransition;
this.refNr = flowmeterNr4DiverterTest;
this.totalRefPulses = 0;
this.massRefPulses = 0;
this.testMethods = TestMethods.Diverter;
this.stopDevs = 0;
scheduleReadDiverterTransition = false;
}
else if (pumpPowerChanged)
{
/// Reset all SendCommand() arguments
sendCommandFlag = true;
this.cmd = Command.None;
pumpPowerChanged = false;
}
else
{
/// Reset all SendCommand() arguments
sendCommandFlag = false;
this.cmd = Command.None;
this.refNr = 0;
this.totalRefPulses = 0;
this.massRefPulses = 0;
this.testMethods = 0;
this.stopDevs = 0;
}
if (this.filters == null) this.filters = new int[] { 0, 0, 0, 0, 0, 0, 0, 0, };
}
/// Run this device
public void RunDeviceAfter()
{
if (DebugLevel == DebugMode.Simulate) return;
UpdateWeights();
uint[] uintFilters = new uint[8];
for (int i = 0; i < 8; i++)
{
uintFilters[i] = (filters.Length > i) ? (uint)filters[i] : uintFilters[i - 1];
}
///
if (sendCommandFlag)
{
controlCom.SendCommand(cmd, refNr, (benchModelRoute & routeMask),
totalRefPulses, massRefPulses, testMethods,
uintFilters, FMFreq, regConst, shortImp, stopDevs);
}
controlCom.RunDeviceAfter();
}
/// Stop this device
public void StopDevice() { }
public void StopDevice2() { }
delegate void ShowEmergencyStopFormDlgt();
///
void ShowEmergencyStopForm()
{
(new TBF.UI.Shared.EmergencyStopForm()).Show();
}
///
/// Sends a command to the control board.
///
/// See ControlBoard.Command enum
/// Number of the etalon/reference (1..5)
/// Route: 64-bit installation specific number
/// kolko impulzov ma trvat skuska
/// See ControlBoard.TestMethods enum
/// 0 = No filtering (0..255)
/// Coefficient used to control reg. valves (1..100)
/// 0 = default value, 1 = spec. processing of very short pulses
/// What to stop
public void SendCommand(Command cmd, int refFlowmtrNr, UInt128 route,
int totalRefPulses, int massRefPulses, TestMethods testMethods, StopDevs stopDevs)
{
this.cmd = cmd;
this.refNr = refFlowmtrNr;
this.benchModelRoute = route;
this.totalRefPulses = totalRefPulses;
this.massRefPulses = massRefPulses;
this.testMethods = testMethods;
this.stopDevs = stopDevs;
sendCommandFlag = true;
}
///
/// Set valves to new positions.
///
/// 'ulong' with bits of valves to open set to '1'
/// 'ulong' with bits of valves to close set to '1'
/// 'ulong' with bits of valves that have changed set to '1'
public UInt128 SetValves(UInt128 valvesToOpen, UInt128 valvesToClose, IList extendedValves)
{
UInt128 oldRoute = benchModelRoute;
benchModelRoute = (((benchModelRoute ^ valvesToInvert) | valvesToOpen) & (~valvesToClose)) ^ valvesToInvert;
foreach (var extV in extendedValves) extV.UpdateRoute(ref benchModelRoute);
log.DebugFormat("SetValves(x,x), new route = {0}", Utils.RouteToStr(benchModelRoute));
sendCommandFlag = true;
return oldRoute ^ benchModelRoute;
}
///
/// Set Route to value returned by RRoute. Take virtual valves into account.
///
/// 'ulong' with bits of valves that have changed set to '1'
public UInt128 SyncRoute()
{
UInt128 oldRoute = benchModelRoute;
benchModelRoute = (RRoute & routeMask) | (benchModelRoute & (~routeMask));
log.DebugFormat("SyncRoute(), new route = {0}", Utils.RouteToStr(benchModelRoute));
return oldRoute ^ benchModelRoute;
}
///
/// Regulation valves control.
///
/// Regulation valve nr. (1..5)
/// Valve regulation mode, see the enum
/// Target position or target frequency or pulse duration
/// Stabilization time when setting the flow: 0=200ms, step 50ms, max. 1.5 sec.
public void ValveMove(int valveNo, RegulValveMode valveMode, float[] valveValue, int stableTime)
{
controlCom.ValveMove(valveNo, valveMode, valveValue, stableTime);
}
///
/// Open one valve and/or close one valve.
/// Events: ValvesSet
///
/// Valve to be opened
/// Valve to be closed
/// Created operation
public IOperation SetValvesOp(IValve valveOpen, IValve valveClose)
{
return new SetValvesOp(this, valveOpen, valveClose);
}
///
/// Open and/or close multiple valves.
/// Events: ValvesSet
///
/// A list of valves to be opened
/// A list of valves to be closed
/// Created operation
public IOperation SetValvesOp(IList valvesOpen, IList valvesClose)
{
return new SetValvesOp(this, valvesOpen, valvesClose);
}
///
/// Starts the measurement.
/// Events: MeasurementStarted
///
/// Flow meter
/// An array of register readers
/// Number of reference pulses to complete the test
/// Created operation
public IOperation StartMeasurementOp(OutputPath outputPath, TestMethods method,
double requiredFlowLo, double requiredFlowHi, int refPulses)
{
if (controlBoardCfg.DebugLevel == DebugMode.Simulate)
{
return new Operations.ReturnGivenEventOp(Event.MeasurementStarted);
}
else
{
return new StartMeasurementOp(this, outputPath, method, requiredFlowLo, requiredFlowHi, refPulses);
}
}
///
/// Starts the measurement.
/// Events: MeasurementStarted
///
/// Flow meter
/// An array of register readers
/// Number of reference pulses to complete the test
/// Created operation
public IOperation StartProlongedMeasurementOp(OutputPath outputPath, TestMethods method,
double requiredFlowLo, double requiredFlowHi,
int totalRefPulses, int massRefPulses)
{
if (controlBoardCfg.DebugLevel == DebugMode.Simulate)
{
return new Operations.ReturnGivenEventOp(Event.MeasurementStarted);
}
else
{
return new StartMeasurementOp(this, outputPath, method, requiredFlowLo, requiredFlowHi, totalRefPulses, massRefPulses);
}
}
///
/// Read diverter samples from the control board and calculated the transition time.
/// Events: Event.None
///
/// Diverter
/// State machine ticks from test start/end when diverter read command is issued (obsolete)
/// State machine ticks from test start/end when diverter samples are read
/// FloatBox for the resulting transition time in s
/// Statistics for plotting diverter transitions
/// Batch number
/// Test name (without repetitions)
/// Repetition number
/// Created operation
public IOperation ReadDiverterTransitionOp(IDiverter div, int runsCountWhenSendingCmd, int runsCountWhenReadingDiv, bool toTank,
Sequences.Statistics plotter, int batchNr, string testName, int repetition)
{
if (controlBoardCfg.DebugLevel == DebugMode.Simulate)
{
return new Operations.ReturnGivenEventOp(Event.None);
}
else
{
return new ReadDiverterTransitionOp(this, div, runsCountWhenSendingCmd, runsCountWhenReadingDiv, toTank, plotter, batchNr, testName, repetition);
}
}
///
/// Queries th econtrol board whether the measurement was completed.
/// Events: MeasurementCompleted or None
///
/// Created operation
public IOperation QueryMeasurementEndOp()
{
return new QueryMeasurementEndOp(this);
}
///
/// Stop controls board flow regulation operation
/// Events: FlowRegulationStopped
///
/// Created operation
public IOperation StopFlowRegulationOp(OutputPath outputPath)
{
return new StopFlowRegulationOp(this, outputPath);
}
///
/// Stop the previous control board operation (diverter, gate, etc.)
/// Events: PreviousStopped
///
/// Created operation
public IOperation StopPreviousOp()
{
return new StopPreviousOp(this);
}
///
/// Sends commands to the control board.
/// Events: Event.None, Event.CommandCompleted
///
/// Command sent to CB when this operation starts
/// Command sent to CB when this operation stops
/// Test method parameter
/// Created operation
public IOperation ExecuteCommandOp(Command commandOnStartOp, Command commandOnStopOp, TestMethods testMethod)
{
return new ExecuteCommandOp(this, commandOnStartOp, commandOnStopOp, testMethod);
}
}
}