/// /// Copyright (c) 2013-2020 Sensus Slovensko a.s. /// using System; using System.Collections.Generic; using System.Text; using log4net; using Common; using TBF.Rig; using TBF.Resources; using TBF.UiBridge; using TBF.Rig.GenericDevices; namespace TBF.Rig.TestMethods.CombinedWithDetection { public class CombinedWithDetectionSeq : Sequences.SequenceBase { private static readonly ILog log = LogManager.GetLogger(typeof(CombinedWithDetectionSeq)); const int DetectionBufferSize = 9; const int DetectionKernelSize = 5; public IList Execute(Config.Entities.Test test, int repetitionNr, bool isLastRepetition, CombinedWithDetTestParams testParams, DebugMode debugLevel) { if (debugLevel == DebugMode.Simulate) { return Simulate(test, repetitionNr, isLastRepetition, testParams); } int rangeIx = 0; /// Default range, used for non-Elde flowmeters if (outPath.FlowMeter is Elde.FlowMeter.FlowMeter) { Elde.FlowMeter.FlowMeter eldeFM = outPath.FlowMeter as Elde.FlowMeter.FlowMeter; rangeIx = -1; /// Indicates invalid range for (int r = 0; r <= 5; r++) { if (eldeFM.RangeEnabled(r) && eldeFM.GetTempLo(r) <= test.TempLimLo && eldeFM.GetTempHi(r) >= test.TempLimHi) { rangeIx = r; } } if (rangeIx == -1) { Bridge.OnError(this, Strings.Flow_meter_temperature_range_does_not_fit_this_test_conditions); return new List { Event.ConfigurationError }; } } IScale scale = outPath.Scale as IScale; if (scale == null) { Bridge.OnError(this, Strings.Missing_a_scale); return new List { Event.ConfigurationError }; } if (test.Part < 0 || test.Part > TBF.Data.CompoundWMsCount) { UiBridge.Bridge.OnError(this, string.Format("Test 'Part' should be '-' or 1 .. {0}", TBF.Data.CompoundWMsCount)); return new List { Event.ConfigurationError }; } IList e; /// Events from currently running operations Elde.ControlBoardDev cBrd = StateMachine.ControlBoard; int tMass1 = 0; int tMass2 = 0; checkUiOp = new Operations.CheckUIOp(true); /// Runs in more then one state processDataLoggingOp = new TBF.Rig.Operations.ProcessDataLoggingOp(processDataLogger, this, false); int[] filters = new int[] { 0, 0, 0, 0, 0, 0, 0, 0 }; if (sensPath != null && sensPath.RegisterReaders != null) { foreach (var rr in sensPath.RegisterReaders) { IRegReaderPulses eldeRR = rr as IRegReaderPulses; if ((eldeRR != null) && (eldeRR.Position >= 1) && (eldeRR.Position <= 8)) { filters[eldeRR.Position - 1] = eldeRR.Filter; } } } cBrd.SetFiltersPidShortPulses(filters, outPath.PidCoef, (test.ShortPulses == 0) ? 0 : 1); IList readTempPressOps = new List(); if (benchPath.TempMtrUp != null) readTempPressOps.Add(benchPath.TempMtrUp.ReadTempOp(ref TempUp)); if (benchPath.TempMtrDown != null) readTempPressOps.Add(benchPath.TempMtrDown.ReadTempOp(ref TempDown)); if (outPath.TempDiv != null) readTempPressOps.Add(outPath.TempDiv.ReadTempOp(ref TempDiv)); if (benchPath.PressMtrUp != null) readTempPressOps.Add(benchPath.PressMtrUp.ReadPressureOp(ref PressUp)); if (benchPath.PressMtrDown != null) readTempPressOps.Add(benchPath.PressMtrDown.ReadPressureOp(ref PressDown)); if (benchPath.PressMtrDelta != null) readTempPressOps.Add(benchPath.PressMtrDelta.ReadPressureOp(ref PressDelta)); if (heatMetersPath != null) readTempPressOps.Add(heatMetersPath.TMeterRefWarm1.ReadTempOp(ref TempRefHi1)); if (heatMetersPath != null) readTempPressOps.Add(heatMetersPath.TMeterRefWarm2.ReadTempOp(ref TempRefHi2)); if (heatMetersPath != null) readTempPressOps.Add(heatMetersPath.TMeterRefCold1.ReadTempOp(ref TempRefLo1)); if (heatMetersPath != null) readTempPressOps.Add(heatMetersPath.TMeterRefCold2.ReadTempOp(ref TempRefLo2)); float switchTimeStart = 0.001f; /// in seconds, original vale is 1 ms float switchTimeEnd = 0.001f; /// in seconds, original vale is 1 ms /// Specific for combined meters int[] lastWMPulses = new int[2 * TBF.Data.CompoundWMsCount]; //-------------------------------- State.Create(string.Format("{0}({1}) : Stop diverter gate etc", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperation(cBrd.StopPreviousOp()) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (TestAndLogUiCmdStop(test,e)) goto stopTest; } while (!e.Contains(Event.PreviousStopped)); LtrPerRefPulse = outPath.FlowMeter.LtrPerPulse; /// [ltr/pulse], nominal flow in [m3/h] /// Notes: /// float timeHr = volumeLtr / (1000.0f * targetFlow); /// float timeSec = 3600.0f * timeHr; /// int refPulses = (int)(timeSec * (2000.0f * targetFlow / pOut.FlowMeter.NominalFlow)); int totalPulses = (int)(test.Volume / LtrPerRefPulse + 0.5f); /// Meters path is required for the following: readRegistersOp = new Operations.ReadMoreRegistersOp(sensPath.RegisterReaders); //==================================== loop: /// Read pressure and temperature once before calling Bridge.OnTestSelected(...) State.Create(string.Format("{0}({1}) : Measuring process data", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) { goto stopTest; } if (TestAndLogUiCmdStop(test, e)) { goto stopTest; } } while (e.Contains(Event.Busy)); /// Start the test, initialize test results Bridge.OnTestSelected(this, new TestSelectedEventArgs(test, repetitionNr, inPath, benchPath, outPath, sensPath, heatMetersPath, totalPulses)); string testName = Results.Utils.GetTestName(test.Name, test.Repeats, repetitionNr); TestStartTime = DateTime.Now; Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.FlowSetting)); Qrise = 0; Qfall = 0; if (!test.DoDraining) /// Do not skip emptying if test.Emptying==true { //-------------------------------- State.Create(string.Format("{0}({1}) : Mesuring mass of water in the tank", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperation(scale.ReadMassOp(ref Mass)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) goto error; if (TestAndLogUiCmdStop(test,e)) goto stopTest; } while (!e.Contains(Event.BalanceDone)); double estimatedEndMass = Mass.Val + test.Volume; if (estimatedEndMass < scale.Capacity * Constants.TankFullFactor) { goto switching_flow_detection; /// Enough room in the tank -> skip emptying } } /// Empty the water tank switch (DrainTheTank(scale, readTempPressOps)) { case Event.Error: goto error; case Event.UiCmdStop: goto stopTest; } switching_flow_detection: int flowDetectTime0 = StateMachine.Time; int flowDetectTime = 0; float estFlowSetTime = 100.0f; /// /// Prepare cameras, ROI-s and measurementOperations /// /// Find ROI-s IList rois = new List(); foreach (var rr in sensPath.RegisterReaders) { GenericDevices.IRegReaderLiveCamera cameraRoI = rr as GenericDevices.IRegReaderLiveCamera; if ((cameraRoI != null) && cameraRoI.Detected) { rois.Add(cameraRoI); } } /// Find cameras IList cameras = new List(); foreach (var roi in rois) { if (roi.Camera != null && !cameras.Contains(roi.Camera)) { roi.Camera.ClearRoiParams(); cameras.Add(roi.Camera); } } /// Register ROI-parameters to cameras foreach (var roi in rois) roi.RegisterRoiToCamera(); /// Prepare measurementOperations IList measureOperations = new List(); foreach (var camera in cameras) measureOperations.Add(camera.MeasurementOp()); //------------------------------------------------ Bridge.OnActivity(this, Strings.Switching_flow_detection); //------------------------------------------------ State.Create(string.Format("{0}({1}) : Start the pump", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation((inPath.Pump is GenericDevices.IPumpFM) ? (inPath.Pump as GenericDevices.IPumpFM).TurnOnOp(test.PumpPower) : null) .AddOperation(cBrd.SetValvesOp(inPath.Pump, null)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.SwitchingFlowDetection)); if (TestAndLogUiCmdStop(test,e)) goto stopTest; } while (!e.Contains(Event.ValvesSet)); State.Create(string.Format("{0}({1}) : Set the initial flow", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation(outPath.RegulValve.SetFlowAndMeasureOp(outPath.FlowMeter, test.Qfrom, test.Qto, RefFlow, FlowSettingTimeoutSec, (float)test.ShortPulses)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.SwitchingFlowDetection)); if (TestAndLogUiCmdStop(test,e)) goto stopTest; if (e.Contains(Event.RegulValveTimeOut)) { Bridge.OnError(this, Strings.Flow_adjustment_failed); goto stopTest; } if (e.Contains(Event.Next)) goto init_flow_set; } while (!e.Contains(Event.FlowReached)); switch (ReadRegistersTempPressAmbient(measureOperations, false)) { case Event.Error: goto error; case Event.UiCmdStop: goto stopTest; } init_flow_set: //==================================== // Find the switching flow //==================================== /// Allocate detection buffers double[] flowsForDetection = new double[DetectionBufferSize]; /// in [m3/h] double[] pulseFreqsForDetection = new double[DetectionBufferSize]; /// Current values flowsForDetection[0] = RefFlow.Val; pulseFreqsForDetection[0] = 0.0f; int startTime = StateMachine.Time; int lastTime = StateMachine.Time; /// Detection parameters float rvPulse = (testParams.TargetQ > (test.Qfrom + test.Qto) / 2.0f) ? 0.05f : -0.05f; /// rise(+) or fall(-) rvPulse *= (100.0f * testParams.RateOfChange); bool detected = false; bool targetReached = false; double detectedFlow = 0; int detectionStartTime = StateMachine.Time; Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.SwitchingFlowDetection)); do { State.Create(string.Format("{0}({1}) : Change the RV position", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation(outPath.RegulValve.ChangeRegulValvePositionOp(rvPulse)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.SwitchingFlowDetection)); if (TestAndLogUiCmdStop(test, e)) goto stopTest; } while (!e.Contains(Event.PositionReached)); { /// /// Update FIFO buffers for the reference flow and the frequency of pulses /// /// Last pulses are kept to calculate differences for (int i = 0; i < 2 * TBF.Data.CompoundWMsCount; i++) lastWMPulses[i] = RegisterReaders[i].WMPulses; /// Shift data in the detection buffers for (int i = DetectionBufferSize - 2; i >= 0; i--) { flowsForDetection[i + 1] = flowsForDetection[i]; pulseFreqsForDetection[i + 1] = pulseFreqsForDetection[i]; } switch (ReadRegistersTempPressAmbient(measureOperations, false)) { case Event.Error: goto error; case Event.UiCmdStop: goto stopTest; } flowsForDetection[0] = cBrd.ReferenceFreq * outPath.FlowMeter.NominalFlow / 2000.0; double diff = RegisterReaders[Math.Max(0, test.Part - 1) * 2 + 1].WMPulses - lastWMPulses[Math.Max(0, test.Part - 1) * 2 + 1]; pulseFreqsForDetection[0] = diff / (double)(StateMachine.Time - lastTime); lastTime = StateMachine.Time; } if ((StateMachine.Time - detectionStartTime > 15) && (flowsForDetection[0] > 0) && (flowsForDetection[DetectionBufferSize - 1] > 0)) { /// /// Evaluate ref. flow and WM pulses frequency data in FIFO buffers. /// Updpate 'detected' and 'targetReached' flags. /// double[] flowBefore = new double[DetectionKernelSize]; double[] flowAfter = new double[DetectionKernelSize]; double[] freqBefore = new double[DetectionKernelSize]; double[] freqAfter = new double[DetectionKernelSize]; for (int i = 0; i < DetectionKernelSize; i++) { flowBefore[i] = flowsForDetection[DetectionBufferSize - DetectionKernelSize + i]; /// The oldest DetectionKernelSize samples freqBefore[i] = pulseFreqsForDetection[DetectionBufferSize - DetectionKernelSize + i]; flowAfter[i] = flowsForDetection[i]; /// The newest DetectionKernelSize samples freqAfter[i] = pulseFreqsForDetection[i]; } /// Skip the smallest and the largest flow Array.Sort(flowBefore); Array.Sort(flowAfter); flowBefore[0] = 0; flowAfter[0] = 0; flowBefore[DetectionKernelSize - 1] = 0; flowAfter[DetectionKernelSize - 1] = 0; /// double aveFlowBefore = 0; double aveFlowAfter = 0; foreach (var f in flowBefore) aveFlowBefore += f; foreach (var f in flowAfter) aveFlowAfter += f; aveFlowBefore /= (double)(DetectionKernelSize - 2); aveFlowAfter /= (double)(DetectionKernelSize - 2); /// Do NOT skip the smallest and the largest flow //Array.Sort(freqBefore); //Array.Sort(freqAfter); //freqBefore[0] = 0; //freqAfter[0] = 0; //freqBefore[DetectionKernelSize - 1] = 0; //freqAfter[DetectionKernelSize - 1] = 0; /// double aveFreqBefore = 0; double aveFreqAfter = 0; foreach (var f in freqBefore) aveFreqBefore += f; foreach (var f in freqAfter) aveFreqAfter += f; aveFreqBefore /= (double)DetectionKernelSize; aveFreqAfter /= (double)DetectionKernelSize; //UiBridge.Bridge.OnEvent(this, string.Format("time={0}, flow{1}, aveFlowB={2}, aveFlowA={3}, pulseFreq={4}, aveFreqB={5}, aveFreqA={6}\r\n", // StateMachine.Time - startTime, // flowsForDetection[0].ToString("F2"), // aveFlowBefore.ToString("F2"), // aveFlowAfter.ToString("F2"), // pulseFreqsForDetection[0].ToString("F2"), // aveFreqBefore.ToString("F2"), // aveFreqAfter.ToString("F2"))); //detectedFlow = (aveFlowBefore + aveFlowAfter) / 2; detectedFlow = aveFlowBefore; if (rvPulse > 0) { /// rise detected = (aveFreqAfter < aveFreqBefore * (1 - testParams.DetectionThreshold)); targetReached = ((aveFlowAfter + aveFlowBefore) / 2) > testParams.TargetQ; } else { /// fall detected = (aveFreqAfter > (aveFreqBefore + testParams.OffsetPulsesFreq) * (1 + testParams.DetectionThreshold)); targetReached = ((aveFlowAfter + aveFlowBefore) / 2) < testParams.TargetQ; } } } while (!detected && !targetReached); if (rvPulse > 0) { Qrise = detectedFlow; } else { Qfall = detectedFlow; } //UiBridge.Bridge.OnEvent(this, string.Format("detected flow={0}\r\n", detectedFlow.ToString("F2"))); float qfrom_detected = (float)(detectedFlow + testParams.RelativeQfrom); float qto_detected = (float)(detectedFlow + testParams.RelativeQto); /// Update test results with the test flow determined from the detected switching flow float Qave_lps = (qfrom_detected + qto_detected) / 7.2f; float testTimeFromDetectedFlow = test.Volume / Qave_lps; /// Test volume wont be changed float relativeQave = (testParams.RelativeQfrom + testParams.RelativeQto) / 2.0f; bool goBackToInitFlow = ((rvPulse > 0) && (relativeQave < 0)) || ((rvPulse < 0) && (relativeQave > 0)); Bridge.OnProcessData(this, new ProcessDataEventArgs(test, repetitionNr, Progress.FlowSetting)); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.FlowSetting)); int flowSetTime0 = StateMachine.Time; if (goBackToInitFlow) { //-------------------------------- State.Create(string.Format("{0}({1}) : Switching flow detected, going back", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation(outPath.RegulValve.SetFlowOp(outPath.FlowMeter, test.Qfrom, test.Qto, RefFlow, FlowSettingTimeoutSec)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); Bridge.OnProcessData(this, new ProcessDataEventArgs(test, repetitionNr, Progress.FlowSetting)); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.FlowSetting)); if (TestAndLogUiCmdStop(test,e)) goto stopTest; if (e.Contains(Event.RegulValveTimeOut)) { Bridge.OnError(this, Strings.Flow_adjustment_failed); goto stopTest; } } while (!e.Contains(Event.FlowReached)); } //-------------------------------- State.Create(string.Format("{0}({1}) : Going to the test flow", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation(outPath.RegulValve.SetFlowOp(outPath.FlowMeter, qfrom_detected, qto_detected, RefFlow, FlowSettingTimeoutSec)) //.AddOp(pOut.RegulValve.SetPositionOp(35.0f, 38.0f, uint.MaxValue)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); Bridge.OnProcessData(this, new ProcessDataEventArgs(test, repetitionNr, Progress.FlowSetting)); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.FlowSetting)); if (TestAndLogUiCmdStop(test,e)) goto stopTest; //if (e.Contains(Event.FlowTimeOut)) goto do_detection; } while (!e.Contains(Event.FlowReached)); int flowSetTime = StateMachine.Time - flowDetectTime0; //start_measurement: //------------------------------------------------ Bridge.OnActivity(this, Strings.Measuring_the_weight); //------------------------------------------------ State.Create(Strings.Measure_the_mass) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation(scale.ReadStableMassOp(ref StartMass, test.MassRepeats, test.MassSpread, test.MassMethod)) .AddOperation(new Operations.TimerOp(StableMassMsrmntTimeoutSec)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) goto error; if (TestAndLogUiCmdStop(test,e)) goto stopTest; if (e.Contains(Event.TimerExpired)) { Bridge.OnError(this, Strings.Mass_measurement_timeout); goto stopTest; } } while (!e.Contains(Event.BalanceDone)); /// Mass.Val = StartMass.Val; tMass1 = StateMachine.Time; //------------------------------------------------ Bridge.OnActivity(this, Strings.Test_in_progress); //------------------------------------------------ State.Create(Strings.Start_the_test) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperations(measureOperations) .AddOperation(cBrd.StartMeasurementOp(outPath, (Elde.TestMethods.Diverter | Elde.TestMethods.Synchro), qfrom_detected, qto_detected, totalPulses)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) goto error; if (TestAndLogUiCmdStop(test,e)) goto stopTest; } while (!e.Contains(Event.MeasurementStarted)); /// /// Measurement loop - preparation /// queryEnd1 = cBrd.QueryMeasurementEndOp(); queryEnd2 = cBrd.QueryMeasurementEndOp(); StartNewStatistics(StateMachine.Time, BatchRslts.Batch.BatchNr, test.Name, repetitionNr, 0); int estimtdEndTime = StateMachine.Time + (int)test.TestTime; /// Read the diverter switch time switchTimeStart = 0.001f * (float)cBrd.DivTime(0); log.WarnFormat("Diverter switch time on test start = {0} ms", cBrd.DivTime(0)); /// Measurement loop - begin while (true) { //-------------------------------- switch (ReadRegistersTempPressAmbient(measureOperations, true)) { case Event.Error: goto error; case Event.UiCmdStop: goto stopTest; case Event.MeasurementCompleted: goto measurement_completed; } int remainingTime = Math.Max(estimtdEndTime - StateMachine.Time, 0); if (remainingTime > 60) { Bridge.OnActivity(this, string.Format("{0} ... {1} {2} {3} {4}", Strings.Test_in_progress, remainingTime / 60, "min", remainingTime % 60, Strings.sec)); } else { Bridge.OnActivity(this, string.Format("{0} ... {1} s", Strings.Test_in_progress, remainingTime)); } UpdateAllStatistics(StateMachine.Time); /// TODO: Reimplement //for (int i = 0; i < TBF.Data.CompoundWMsCount; i++) //{ // data.TestResult.CombinedMeters[i].VolumeMeter = data.TestResult.Meters[2 * i].VolumeMeter // + data.TestResult.Meters[2 * i + 1].VolumeMeter; // if (data.Volume.Valid) // { // data.TestResult.CombinedMeters[i].VolumeErrorPct = // Formulas.ErrorFromVolumes(data.TestResult.CombinedMeters[i].VolumeMeter, data.Volume.Val); // } //} Bridge.OnProcessData(this, new ProcessDataEventArgs(test, repetitionNr, Progress.Test)); Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.Test)); } /// Measurement loop - end measurement_completed: //------------------------------------------------ Bridge.OnActivity(this, Strings.Measuring_the_weight); //------------------------------------------------ State.Create(string.Format("{0}({1}) : Measuring the mass", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperation(scale.ReadStableMassOp(ref EndMass, test.MassRepeats, test.MassSpread, test.MassMethod)) .AddOperation(new Operations.TimerOp(StableMassMsrmntTimeoutSec)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) goto error; if (TestAndLogUiCmdStop(test,e)) goto stopTest; if (e.Contains(Event.TimerExpired)) { Bridge.OnError(this, Strings.Mass_measurement_timeout); goto stopTest; } } while (!e.Contains(Event.BalanceDone)); /// tMass2 = StateMachine.Time; TestEndTime = DateTime.Now; if (test.DoDrainingAfter) { State.Create(string.Format("{0}({1}) : Open the drain valve", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperation(StateMachine.ControlBoard.SetValvesOp(scale.DrainValve, null)) .AddOperations(readTempPressOps) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) { goto error; } } while (e.Contains(Event.ValvesBusy)); } /// Read the diverter switch time switchTimeEnd = 0.001f * (float)cBrd.DivTime(0); log.WarnFormat("Diverter switch time on test end = {0} ms", cBrd.DivTime(0)); //------------------------------------------------ Bridge.OnActivity(this, Strings.Test_completed); //------------------------------------------------ State.Create(Strings.Stop_the_pump) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperation((inPath != null && inPath.Pump is GenericDevices.IPumpFM) ? (inPath.Pump as GenericDevices.IPumpFM).TurnOffOp() : null) .AddOperation(cBrd.SetValvesOp(null, inPath.Pump)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (TestAndLogUiCmdStop(test,e)) goto stopTest; } while (!e.Contains(Event.ValvesSet)); //-------------------------------- State.Create(string.Format("{0}({1}) : Stop_diverter_gate_etc", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperations(readTempPressOps) .AddOperation(cBrd.StopPreviousOp()) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (TestAndLogUiCmdStop(test,e)) goto stopTest; } while (!e.Contains(Event.PreviousStopped)); /// Make sure the CycleBeginForm is closed so that water meter data (s/n) can be copied into results if (UIFlowControl.Stop == WaitBeginFormClosed()) goto stopTest; /// /// Populate TestResult data entity with data /// Results.Entities.TestRslt tstRslt = BatchRslts.GetTestRslt(testName, test.Part); bool stopCycle = false; if (tstRslt != null) { Results.Utils.GetCounterStates(tstRslt, Program.LocalSettings.Counters); UpdateTempPressDensAmb(tstRslt); /// Main results tstRslt.MethodClass = TbfComponents.FindComponent(test.Method).ClassName; tstRslt.StartTime = TestStartTime; tstRslt.EndTime = TestEndTime; tstRslt.FlowSetTime = flowSetTime; tstRslt.TestTime = cBrd.TTime; /// [s] measurement time tstRslt.TimeBtwnMassMsrmnts = tMass2 - tMass1; double massOfEvaporatedWater = tstRslt.TimeBtwnMassMsrmnts * outPath.Scale.EvaporationRate(tstRslt.TempDivMean); tstRslt.PulsesMaster = Convert.ToDouble(cBrd.RefPulses); /// Pulses of the master flow meter (test total) tstRslt.MassStartRaw = StartMass.Val; tstRslt.MassStart = Config.Entities.MeasurementCorrection.CorrectedValue(tstRslt.MassStartRaw, scale.Corrections); tstRslt.MassEndRaw = EndMass.Val; tstRslt.MassEnd = Config.Entities.MeasurementCorrection.CorrectedValue(tstRslt.MassEndRaw, scale.Corrections); tstRslt.FlowMass = 3600.0 * (tstRslt.MassEnd - tstRslt.MassStart + massOfEvaporatedWater) / tstRslt.TestTime; /// [kg/h] double flow = 3.6 * LtrPerRefPulse * cBrd.RefPulses / tstRslt.TestTime; /// [m3/h] tstRslt.MassOfEvapWater = massOfEvaporatedWater; tstRslt.VolumeCTV = 1000 * tstRslt.Batch.Buoyancy * (tstRslt.MassEnd - tstRslt.MassStart + massOfEvaporatedWater) / tstRslt.DensityLine; /// [l] commercially true volume if ((outPath.Diverter != null) && (tstRslt.TestTime > float.Epsilon)) { tstRslt.TestTimeCorrection = outPath.Diverter.TestTimeCorrection(flow); tstRslt.VolumeCTV *= tstRslt.TestTime + tstRslt.TestTimeCorrection; tstRslt.VolumeCTV /= tstRslt.TestTime; } tstRslt.VolumeMaster = LtrPerRefPulse * tstRslt.PulsesMaster; /// [l] volume from the master flow meter tstRslt.ConstMasterRaw = outPath.FlowMeter.LtrPerPulse; /// Uncorrected master flowmeter coefficient tstRslt.ConstMasterCorr = outPath.FlowMeter.LtrPerPulseCorrected(flow, rangeIx); /// Corrected master pulses per liter tstRslt.ConstMaster = (tstRslt.VolumeMaster == 0) ? tstRslt.ConstMasterCorr : (LtrPerRefPulse * tstRslt.VolumeCTV / tstRslt.VolumeMaster); /// Calculated master pulses per liter tstRslt.ErrorMaster = Config.Formulas.ErrorFromVolumes(tstRslt.VolumeMaster, tstRslt.VolumeCTV); tstRslt.FlowVolume = 3.6 * tstRslt.VolumeCTV / tstRslt.TestTime; tstRslt.FlowMean = Convert.ToSingle(RefFlowStat.Average); tstRslt.FlowStart = Convert.ToSingle(RefFlowStat.First); tstRslt.FlowEnd = Convert.ToSingle(RefFlowStat.Last); tstRslt.FlowMin = Convert.ToSingle(RefFlowStat.Min); tstRslt.FlowMax = Convert.ToSingle(RefFlowStat.Max); tstRslt.DiverterStart = switchTimeStart; tstRslt.DiverterEnd = switchTimeEnd; long infoFlags = 0; tstRslt.ErrorFlags = (ErrorFlagsComp != null) ? ErrorFlagsComp.GetErrorFlags(tstRslt, true, false, switchTimeStart, switchTimeEnd, out infoFlags, out stopCycle) : 0; tstRslt.InfoFlags = infoFlags; for (int i = 0; i < BatchRslts.WMPositionsCount; i++) { if (!test.IsPartCompatible(Utils.PartNr(i + 1, BatchRslts.Batch.Compound))) continue; Results.Entities.MeterTestRslt mainMeterRslt = BatchRslts.GetMeterTestRslt(testName, i, CompoundMeterId.CompoundMain); Results.Entities.MeterTestRslt auxMeterRslt = BatchRslts.GetMeterTestRslt(testName, i, CompoundMeterId.CompoundAux); for (int isAux = 0; isAux <= 1; isAux++) /// 0=main, 1=aux { GenericDevices.IRegReader regReader = sensPath.RegisterReaders[2 * i + isAux]; Results.Entities.MeterTestRslt meterRslt = (isAux == 0) ? mainMeterRslt : auxMeterRslt; if (meterRslt != null && regReader != null) { meterRslt.RegReaderType = (int)regReader.RegisterReaderType; meterRslt.PulsesPerLiter = regReader.PulsesPerLtr; /// Optionally supress pulses from the large water meter meterRslt.PulsesMeter = (isAux == 0 && testParams.SupressTrills) ? 0 : Convert.ToDouble(regReader.WMPulses); meterRslt.PulsesMaster = Convert.ToDouble(regReader.WMRefPulses); meterRslt.TestTime = cBrd.TTime; meterRslt.VolumeStart = 0; meterRslt.VolumeEnd = 0; meterRslt.VolumeRef = tstRslt.VolumeCTV; meterRslt.VolumeMeter = meterRslt.PulsesMeter * regReader.LtrsPerPulse; /// liter /// if (meterRslt.PulsesMaster != 0) { meterRslt.VolumeMeter *= (tstRslt.PulsesMaster / meterRslt.PulsesMaster); } meterRslt.Error = Config.Formulas.ErrorFromVolumes(meterRslt.VolumeMeter, tstRslt.VolumeCTV); /// Main/Aux meter error is not usedfor evaluation } } Results.Entities.MeterTestRslt compoundMeterRslt = BatchRslts.GetMeterTestRslt(testName, i, CompoundMeterId.Compound); if (compoundMeterRslt != null && mainMeterRslt != null && auxMeterRslt != null) { compoundMeterRslt.VolumeRef = tstRslt.VolumeCTV; compoundMeterRslt.VolumeMeter = mainMeterRslt.VolumeMeter + auxMeterRslt.VolumeMeter; compoundMeterRslt.PulsesMaster = tstRslt.PulsesMaster; compoundMeterRslt.TestTime = tstRslt.TestTime; compoundMeterRslt.Error = Config.Formulas.ErrorFromVolumes(compoundMeterRslt.VolumeMeter, compoundMeterRslt.VolumeRef); compoundMeterRslt.Passed = (compoundMeterRslt.Error >= test.GetErrLimLo(tstRslt.VolumeCTV, tstRslt.TestTime) + test.Uncertainty) && (compoundMeterRslt.Error <= test.GetErrLimHi(tstRslt.VolumeCTV, tstRslt.TestTime) - test.Uncertainty) && (tstRslt.ErrorFlags == 0); mainMeterRslt.Passed = auxMeterRslt.Passed = compoundMeterRslt.Passed; mainMeterRslt.TestDone = auxMeterRslt.TestDone = compoundMeterRslt.TestDone = true; tstRslt.TestDone = true; if (Qrise != 0) BatchRslts.Batch.WaterMeters[i].QRise = Qrise; if (Qfall != 0) BatchRslts.Batch.WaterMeters[i].QFall = Qfall; } } tstRslt.Components = Results.Entities.Components .UpdateList(BatchRslts.ComponentsList, new Results.Entities.Components((BenchInfo != null) ? BenchInfo.TestBenchId : 1, (BenchInfo != null) ? BenchInfo.TestBenchName : "testbench", inPath.Pump != null ? inPath.Pump.Name : string.Empty, outPath.FlowMeter != null ? outPath.FlowMeter.Name : string.Empty, scale != null ? scale.Name : string.Empty, outPath.RegulValve != null ? outPath.RegulValve.Name : string.Empty, outPath.Diverter != null ? outPath.Diverter.Name : string.Empty)); /// Update water meter error flags if (ErrorFlagsComp != null) { if (BatchRslts.Batch != null && BatchRslts.Batch.WaterMeters != null) { for (int i = 0; i < BatchRslts.WMPositionsCount; i++) { if (BatchRslts.Batch.WaterMeters[i] != null && !BatchRslts.Batch.WaterMeters[i].Disabled) { long wmInfoFlags; BatchRslts.Batch.WaterMeters[i].ErrorFlags = ErrorFlagsComp.GetWMtrErrorFlags(BatchRslts.Batch.WaterMeters[i].MeterTestRslts, out wmInfoFlags); BatchRslts.Batch.WaterMeters[i].InfoFlags = wmInfoFlags; } } } } /// Update results Bridge.OnTestCompleted(this, new TestCompletedEventArgs(testName, tstRslt)); } Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.TransitionAfter)); /// Append the results to the CSV-file allResults.Info(TestResult2CsvLine(testName, test.Part)); ///----------------------/// /// Quit this sequence /// ///----------------------/// if (isLastRepetition || stopCycle) { /// Stop the pump State.Create(string.Format("{0}({1}) : Test(s) completed -> Stopping the pump", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperation(cBrd.SetValvesOp(null, inPath.Pump)) .AddOperation((inPath != null && inPath.Pump is GenericDevices.IPumpFM) ? (inPath.Pump as GenericDevices.IPumpFM).TurnOffOp() : null) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) goto error; } while (!e.Contains(Event.ValvesSet) || ((inPath.Pump is GenericDevices.IPumpFM) && !e.Contains(Event.TurnPumpOnOffDone))); } return stopCycle ? new List { Event.ErrorFlagsStop } : new List { Event.Done }; //==================================== stopTest: State.Create(string.Format("{0}({1}) : User selected STOP -> Closing the valves", test.Method, test.Name)) .AddOperation(checkUiOp) .AddOperation((inPath != null && inPath.Pump is GenericDevices.IPumpFM) ? (inPath.Pump as GenericDevices.IPumpFM).TurnOffOp() : null) .AddOperation(cBrd.SetValvesOp(StateMachine.DefaultValvesOpen, StateMachine.DefaultValvesClose)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) goto error; } while (!e.Contains(Event.ValvesSet)); return new List { Event.UiCmdStop }; //==================================== error: State.Create("close_before_error") .AddOperation(checkUiOp) .AddOperation((inPath != null && inPath.Pump is GenericDevices.IPumpFM) ? (inPath.Pump as GenericDevices.IPumpFM).TurnOffOp() : null) .AddOperation(cBrd.SetValvesOp(StateMachine.DefaultValvesOpen, StateMachine.DefaultValvesClose)) .EnterState(); do { e = StateMachine.WaitRunDevsRunOps(); if (e.Contains(Event.Error)) break; } while (!e.Contains(Event.ValvesSet)); return new List { Event.Error }; } IList Simulate(Config.Entities.Test test, int repetitionNr, bool isLastRepetition, CombinedWithDetTestParams testParams) { /// /// Test method simulation /// Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.FlowSetting)); if (test.Name.ToLower().Contains("rise") || test.Name.ToLower().Contains("steig")) { MakeSimulatedCompound(test, 1, 0, 0.7f, 0.0f); } else { MakeSimulatedCompound(test, 1, 0, 0.7f, 0.9f); } Bridge.OnTestProgress(this, new TestProgressEventArgs(test, repetitionNr, Progress.Completed)); Bridge.OnTestCompleted(this, new TestCompletedEventArgs(test.Name, BatchRslts.GetTestRslt(Results.Utils.GetTestName(test.Name, 1, 1), 0))); allResults.Info(TestResult2CsvLine(test.Name, 0)); /// Append the results to the CSV-file //------------------------------------------------ Bridge.OnActivity(this, string.Format("Simulating {0}", test.Name)); //------------------------------------------------ State.Create(string.Format("{0}({1}) : Simulating {1}", test.Method, test.Name)) .AddOperation(checkUiOp) .EnterState(); IList e = StateMachine.WaitRunDevsRunOps(); return new List { TestAndLogUiCmdStop(test, e) ? Event.UiCmdStop : Event.Done }; } } }