Running: ./testmodel.py --libraries=/home/hudson/saved_omc/libraries/.openmodelica/libraries --ompython_omhome=/usr ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.conf.json loadFile("/home/hudson/saved_omc/libraries/.openmodelica/libraries/ModelicaServices 4.1.0+maint.om/package.mo", uses=false) [Timeout 180] "Notification: Performance of loadFile(/home/hudson/saved_omc/libraries/.openmodelica/libraries/ModelicaServices 4.1.0+maint.om/package.mo): time 0.0009378/0.0009378, allocations: 81.95 kB / 19.87 MB, free: 4.617 MB / 18.57 MB " [Timeout remaining time 180] loadFile("/home/hudson/saved_omc/libraries/.openmodelica/libraries/Complex 4.1.0+maint.om/package.mo", uses=false) [Timeout 180] "Notification: Performance of loadFile(/home/hudson/saved_omc/libraries/.openmodelica/libraries/Complex 4.1.0+maint.om/package.mo): time 0.000975/0.000975, allocations: 173.7 kB / 23.28 MB, free: 1.219 MB / 18.57 MB " [Timeout remaining time 180] loadFile("/home/hudson/saved_omc/libraries/.openmodelica/libraries/Modelica 4.1.0+maint.om/package.mo", uses=false) [Timeout 180] "Notification: Performance of loadFile(/home/hudson/saved_omc/libraries/.openmodelica/libraries/Modelica 4.1.0+maint.om/package.mo): time 0.9196/0.9196, allocations: 177.1 MB / 203.7 MB, free: 5.508 MB / 186.7 MB " [Timeout remaining time 179] loadFile("/home/hudson/saved_omc/libraries/.openmodelica/libraries/ThermofluidStream main/package.mo", uses=false) [Timeout 180] "Notification: Performance of loadFile(/home/hudson/saved_omc/libraries/.openmodelica/libraries/ThermofluidStream main/package.mo): time 0.65/0.65, allocations: 118.6 MB / 378.9 MB, free: 1.34 MB / 346.7 MB " [Timeout remaining time 179] Using package ThermofluidStream with version 1.4.0 (/home/hudson/saved_omc/libraries/.openmodelica/libraries/ThermofluidStream main/package.mo) Using package Modelica with version 4.1.0 (/home/hudson/saved_omc/libraries/.openmodelica/libraries/Modelica 4.1.0+maint.om/package.mo) Using package Complex with version 4.1.0 (/home/hudson/saved_omc/libraries/.openmodelica/libraries/Complex 4.1.0+maint.om/package.mo) Using package ModelicaServices with version 4.1.0 (/home/hudson/saved_omc/libraries/.openmodelica/libraries/ModelicaServices 4.1.0+maint.om/package.mo) Running command: translateModel(ThermofluidStream.Media.Tests.TestXRGMedia,tolerance=1e-06,outputFormat="mat",numberOfIntervals=1000,variableFilter=".*",fileNamePrefix="ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia") translateModel(ThermofluidStream.Media.Tests.TestXRGMedia,tolerance=1e-06,outputFormat="mat",numberOfIntervals=1000,variableFilter=".*",fileNamePrefix="ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia") [Timeout 660] "Notification: Performance of FrontEnd - loaded program: time 1.443e-06/1.443e-06, allocations: 0 / 484 MB, free: 8.145 MB / 410.7 MB Notification: Performance of FrontEnd - Absyn->SCode: time 1.584e-05/1.728e-05, allocations: 3.469 kB / 484 MB, free: 8.141 MB / 410.7 MB Notification: Performance of NFInst.instantiate(ThermofluidStream.Media.Tests.TestXRGMedia): time 0.08197/0.08198, allocations: 77.47 MB / 0.5484 GB, free: 2.754 MB / 474.7 MB Notification: Performance of NFInst.instExpressions: time 0.04452/0.1265, allocations: 46.75 MB / 0.594 GB, free: 3.855 MB / 0.5105 GB Notification: Performance of NFInst.updateImplicitVariability: time 0.006179/0.1327, allocations: 265.6 kB / 0.5943 GB, free: 3.594 MB / 0.5105 GB Notification: Performance of NFTyping.typeComponents: time 0.003816/0.1365, allocations: 1.495 MB / 0.5957 GB, free: 2.086 MB / 0.5105 GB Notification: Performance of NFTyping.typeBindings: time 0.02782/0.1643, allocations: 12.43 MB / 0.6079 GB, free: 5.582 MB / 0.5261 GB Notification: Performance of NFTyping.typeClassSections: time 0.01009/0.1744, allocations: 4.478 MB / 0.6122 GB, free: 1.094 MB / 0.5261 GB Notification: Performance of NFFlatten.flatten: time 0.01647/0.1909, allocations: 17.82 MB / 0.6296 GB, free: 15.18 MB / 0.5573 GB Notification: Performance of NFFlatten.resolveConnections: time 0.002989/0.1939, allocations: 1.81 MB / 0.6314 GB, free: 13.27 MB / 0.5573 GB Notification: Performance of NFEvalConstants.evaluate: time 0.2685/0.4623, allocations: 49.13 MB / 0.6794 GB, free: 39.44 MB / 0.5573 GB Notification: Performance of NFSimplifyModel.simplify: time 0.01266/0.475, allocations: 9.123 MB / 0.6883 GB, free: 39.29 MB / 0.5573 GB Notification: Performance of NFPackage.collectConstants: time 0.002356/0.4773, allocations: 0.9586 MB / 0.6892 GB, free: 39.29 MB / 0.5573 GB Notification: Performance of NFFlatten.collectFunctions: time 0.03156/0.5089, allocations: 24.46 MB / 0.7131 GB, free: 33.59 MB / 0.5573 GB Notification: Performance of NFScalarize.scalarize: time 0.002045/0.511, allocations: 2.356 MB / 0.7154 GB, free: 32.89 MB / 0.5573 GB Notification: Performance of NFVerifyModel.verify: time 0.004675/0.5156, allocations: 4.22 MB / 0.7195 GB, free: 30.29 MB / 0.5573 GB Notification: Performance of NFConvertDAE.convert: time 0.04767/0.5633, allocations: 34.6 MB / 0.7533 GB, free: 1.5 MB / 0.5573 GB Notification: Performance of FrontEnd - DAE generated: time 6.562e-06/0.5633, allocations: 0 / 0.7533 GB, free: 1.5 MB / 0.5573 GB Notification: Performance of FrontEnd: time 1.323e-06/0.5633, allocations: 0 / 0.7533 GB, free: 1.5 MB / 0.5573 GB Notification: Performance of Transformations before backend: time 0.0001675/0.5635, allocations: 4 kB / 0.7533 GB, free: 1.496 MB / 0.5573 GB Notification: Model statistics after passing the front-end and creating the data structures used by the back-end: * Number of equations: 2248 * Number of variables: 2248 Notification: Performance of Generate backend data structure: time 0.02136/0.5848, allocations: 13.08 MB / 0.7661 GB, free: 6.633 MB / 0.573 GB Notification: Performance of prepare preOptimizeDAE: time 3.909e-05/0.5849, allocations: 8.031 kB / 0.7661 GB, free: 6.625 MB / 0.573 GB Notification: Performance of preOpt normalInlineFunction (simulation): time 0.008081/0.593, allocations: 3.766 MB / 0.7698 GB, free: 3.512 MB / 0.573 GB Notification: Performance of preOpt evaluateParameters (simulation): time 0.006686/0.5996, allocations: 5.663 MB / 0.7753 GB, free: 15.37 MB / 0.5886 GB Notification: Performance of preOpt simplifyIfEquations (simulation): time 0.0005708/0.6002, allocations: 0.8619 MB / 0.7762 GB, free: 14.7 MB / 0.5886 GB Notification: Performance of preOpt expandDerOperator (simulation): time 0.0009099/0.6011, allocations: 0.8001 MB / 0.777 GB, free: 14.16 MB / 0.5886 GB Notification: Performance of preOpt clockPartitioning (simulation): time 0.01011/0.6112, allocations: 8.564 MB / 0.7853 GB, free: 5.613 MB / 0.5886 GB Notification: Performance of preOpt findStateOrder (simulation): time 9.872e-05/0.6113, allocations: 2.062 kB / 0.7853 GB, free: 5.613 MB / 0.5886 GB Notification: Performance of preOpt replaceEdgeChange (simulation): time 0.0004953/0.6118, allocations: 320 kB / 0.7856 GB, free: 5.301 MB / 0.5886 GB Notification: Performance of preOpt inlineArrayEqn (simulation): time 0.0002279/0.6121, allocations: 386.7 kB / 0.786 GB, free: 4.922 MB / 0.5886 GB Notification: Performance of preOpt removeEqualRHS (simulation): time 0.006879/0.6189, allocations: 4.226 MB / 0.7901 GB, free: 0.7031 MB / 0.5886 GB Warning: The model contains alias variables with redundant start and/or conflicting nominal values. It is recommended to resolve the conflicts, because otherwise the system could be hard to solve. To print the conflicting alias sets and the chosen candidates please use -d=aliasConflicts. Notification: Performance of preOpt removeSimpleEquations (simulation): time 0.03093/0.6499, allocations: 27.65 MB / 0.8171 GB, free: 6.418 MB / 0.6198 GB Notification: Performance of preOpt comSubExp (simulation): time 0.007525/0.6574, allocations: 4.755 MB / 0.8218 GB, free: 1.793 MB / 0.6198 GB Notification: Performance of preOpt resolveLoops (simulation): time 0.003158/0.6606, allocations: 2.133 MB / 0.8238 GB, free: 15.68 MB / 0.6355 GB Warning: The model contains alias variables with redundant start and/or conflicting nominal values. It is recommended to resolve the conflicts, because otherwise the system could be hard to solve. To print the conflicting alias sets and the chosen candidates please use -d=aliasConflicts. Notification: Performance of preOpt evalFunc (simulation): time 0.0255/0.6861, allocations: 14.03 MB / 0.8375 GB, free: 2.137 MB / 0.6355 GB Notification: Performance of preOpt encapsulateWhenConditions (simulation): time 9.157e-05/0.6861, allocations: 115.5 kB / 0.8377 GB, free: 2.012 MB / 0.6355 GB Notification: Performance of pre-optimization done (n=1014): time 1.173e-05/0.6862, allocations: 0 / 0.8377 GB, free: 2.012 MB / 0.6355 GB Notification: Performance of matching and sorting (n=1029): time 0.04121/0.7274, allocations: 17.56 MB / 0.8548 GB, free: 468 kB / 0.6511 GB Notification: Performance of inlineWhenForInitialization (initialization): time 6.072e-05/0.7274, allocations: 125.2 kB / 0.8549 GB, free: 328 kB / 0.6511 GB Notification: Performance of selectInitializationVariablesDAE (initialization): time 0.004092/0.7315, allocations: 4.692 MB / 0.8595 GB, free: 12.43 MB / 0.6667 GB Notification: Performance of collectPreVariables (initialization): time 0.0004199/0.7319, allocations: 157.7 kB / 0.8597 GB, free: 12.27 MB / 0.6667 GB Notification: Performance of collectInitialEqns (initialization): time 0.001867/0.7338, allocations: 3.868 MB / 0.8634 GB, free: 8.652 MB / 0.6667 GB Notification: Performance of collectInitialBindings (initialization): time 0.002333/0.7361, allocations: 3.701 MB / 0.867 GB, free: 5.176 MB / 0.6667 GB Notification: Performance of simplifyInitialFunctions (initialization): time 0.00192/0.7381, allocations: 1.879 MB / 0.8689 GB, free: 3.504 MB / 0.6667 GB Notification: Performance of setup shared object (initialization): time 0.0001017/0.7382, allocations: 476.8 kB / 0.8693 GB, free: 3.035 MB / 0.6667 GB Notification: Performance of preBalanceInitialSystem (initialization): time 0.001889/0.7401, allocations: 1.418 MB / 0.8707 GB, free: 1.613 MB / 0.6667 GB Notification: Performance of partitionIndependentBlocks (initialization): time 0.003268/0.7433, allocations: 3.344 MB / 0.874 GB, free: 13.94 MB / 0.6823 GB Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: conductionElement.deltaE_system = $START.conductionElement.deltaE_system (0.0 = $START.conductionElement.deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: conductionElement1.deltaE_system = $START.conductionElement1.deltaE_system (0.0 = $START.conductionElement1.deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.thermalElementB[1].deltaE_system = $START.discretizedHEX.thermalElementB[1].deltaE_system (0.0 = $START.discretizedHEX.thermalElementB[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.thermalElementB[2].deltaE_system = $START.discretizedHEX.thermalElementB[2].deltaE_system (0.0 = $START.discretizedHEX.thermalElementB[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.thermalElementB[3].deltaE_system = $START.discretizedHEX.thermalElementB[3].deltaE_system (0.0 = $START.discretizedHEX.thermalElementB[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.thermalElementA[1].deltaE_system = $START.discretizedHEX.thermalElementA[1].deltaE_system (0.0 = $START.discretizedHEX.thermalElementA[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.thermalElementA[2].deltaE_system = $START.discretizedHEX.thermalElementA[2].deltaE_system (0.0 = $START.discretizedHEX.thermalElementA[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.thermalElementA[3].deltaE_system = $START.discretizedHEX.thermalElementA[3].deltaE_system (0.0 = $START.discretizedHEX.thermalElementA[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX1.thermalElementB[1].deltaE_system = $START.discretizedHEX1.thermalElementB[1].deltaE_system (0.0 = $START.discretizedHEX1.thermalElementB[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX1.thermalElementB[2].deltaE_system = $START.discretizedHEX1.thermalElementB[2].deltaE_system (0.0 = $START.discretizedHEX1.thermalElementB[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX1.thermalElementB[3].deltaE_system = $START.discretizedHEX1.thermalElementB[3].deltaE_system (0.0 = $START.discretizedHEX1.thermalElementB[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX1.thermalElementA[1].deltaE_system = $START.discretizedHEX1.thermalElementA[1].deltaE_system (0.0 = $START.discretizedHEX1.thermalElementA[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX1.thermalElementA[2].deltaE_system = $START.discretizedHEX1.thermalElementA[2].deltaE_system (0.0 = $START.discretizedHEX1.thermalElementA[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX1.thermalElementA[3].deltaE_system = $START.discretizedHEX1.thermalElementA[3].deltaE_system (0.0 = $START.discretizedHEX1.thermalElementA[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX2.thermalElementB[1].deltaE_system = $START.discretizedHEX2.thermalElementB[1].deltaE_system (0.0 = $START.discretizedHEX2.thermalElementB[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX2.thermalElementB[2].deltaE_system = $START.discretizedHEX2.thermalElementB[2].deltaE_system (0.0 = $START.discretizedHEX2.thermalElementB[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX2.thermalElementB[3].deltaE_system = $START.discretizedHEX2.thermalElementB[3].deltaE_system (0.0 = $START.discretizedHEX2.thermalElementB[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX2.thermalElementA[1].deltaE_system = $START.discretizedHEX2.thermalElementA[1].deltaE_system (0.0 = $START.discretizedHEX2.thermalElementA[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX2.thermalElementA[2].deltaE_system = $START.discretizedHEX2.thermalElementA[2].deltaE_system (0.0 = $START.discretizedHEX2.thermalElementA[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX2.thermalElementA[3].deltaE_system = $START.discretizedHEX2.thermalElementA[3].deltaE_system (0.0 = $START.discretizedHEX2.thermalElementA[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX4.thermalElementB[1].deltaE_system = $START.discretizedHEX4.thermalElementB[1].deltaE_system (0.0 = $START.discretizedHEX4.thermalElementB[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX4.thermalElementB[2].deltaE_system = $START.discretizedHEX4.thermalElementB[2].deltaE_system (0.0 = $START.discretizedHEX4.thermalElementB[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX4.thermalElementB[3].deltaE_system = $START.discretizedHEX4.thermalElementB[3].deltaE_system (0.0 = $START.discretizedHEX4.thermalElementB[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX4.thermalElementA[1].deltaE_system = $START.discretizedHEX4.thermalElementA[1].deltaE_system (0.0 = $START.discretizedHEX4.thermalElementA[1].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX4.thermalElementA[2].deltaE_system = $START.discretizedHEX4.thermalElementA[2].deltaE_system (0.0 = $START.discretizedHEX4.thermalElementA[2].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX4.thermalElementA[3].deltaE_system = $START.discretizedHEX4.thermalElementA[3].deltaE_system (0.0 = $START.discretizedHEX4.thermalElementA[3].deltaE_system) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: flowResistance8.m_flow = flowResistance8.m_flow_0 (discretizedHEX2.m_flow_0_B = flowResistance8.m_flow_0) Warning: It was not possible to determine if the initialization problem is consistent, because of not evaluable parameters/start values during compile time: discretizedHEX.inletA.m_flow = discretizedHEX.m_flow_0_A (discretizedHEX4.m_flow_0_B + discretizedHEX2.m_flow_0_B = discretizedHEX.m_flow_0_A) Notification: Performance of analyzeInitialSystem (initialization): time 0.01333/0.7567, allocations: 11.7 MB / 0.8854 GB, free: 1.973 MB / 0.6823 GB Notification: Performance of solveInitialSystemEqSystem (initialization): time 3.005e-05/0.7567, allocations: 8 kB / 0.8854 GB, free: 1.965 MB / 0.6823 GB Notification: Performance of matching and sorting (n=1210) (initialization): time 0.01028/0.767, allocations: 7.499 MB / 0.8927 GB, free: 10.55 MB / 0.698 GB Notification: Performance of prepare postOptimizeDAE: time 3.113e-05/0.767, allocations: 16 kB / 0.8928 GB, free: 10.53 MB / 0.698 GB Notification: Performance of postOpt simplifyComplexFunction (initialization): time 0.007354/0.7744, allocations: 5.708 MB / 0.8983 GB, free: 4.738 MB / 0.698 GB Notification: Performance of postOpt tearingSystem (initialization): time 0.008587/0.7829, allocations: 1.858 MB / 0.9001 GB, free: 2.82 MB / 0.698 GB Notification: Performance of postOpt solveSimpleEquations (initialization): time 0.003757/0.7867, allocations: 1.505 MB / 0.9016 GB, free: 1.395 MB / 0.698 GB Notification: Performance of postOpt calculateStrongComponentJacobians (initialization): time 0.4419/1.229, allocations: 63.46 MB / 0.9636 GB, free: 128.4 MB / 0.698 GB Notification: Performance of postOpt simplifyAllExpressions (initialization): time 0.004671/1.233, allocations: 269.6 kB / 0.9638 GB, free: 128.4 MB / 0.698 GB Notification: Performance of postOpt collapseArrayExpressions (initialization): time 0.0006014/1.234, allocations: 317.4 kB / 0.9641 GB, free: 128.4 MB / 0.698 GB Warning: The initial conditions are over specified. The following 28 initial equations are redundant, so they are removed from the initialization system: conductionElement.deltaE_system = $START.conductionElement.deltaE_system conductionElement1.deltaE_system = $START.conductionElement1.deltaE_system discretizedHEX.thermalElementB[1].deltaE_system = $START.discretizedHEX.thermalElementB[1].deltaE_system discretizedHEX.thermalElementB[2].deltaE_system = $START.discretizedHEX.thermalElementB[2].deltaE_system discretizedHEX.thermalElementB[3].deltaE_system = $START.discretizedHEX.thermalElementB[3].deltaE_system discretizedHEX.thermalElementA[1].deltaE_system = $START.discretizedHEX.thermalElementA[1].deltaE_system discretizedHEX.thermalElementA[2].deltaE_system = $START.discretizedHEX.thermalElementA[2].deltaE_system discretizedHEX.thermalElementA[3].deltaE_system = $START.discretizedHEX.thermalElementA[3].deltaE_system discretizedHEX1.thermalElementB[1].deltaE_system = $START.discretizedHEX1.thermalElementB[1].deltaE_system discretizedHEX1.thermalElementB[2].deltaE_system = $START.discretizedHEX1.thermalElementB[2].deltaE_system discretizedHEX1.thermalElementB[3].deltaE_system = $START.discretizedHEX1.thermalElementB[3].deltaE_system discretizedHEX1.thermalElementA[1].deltaE_system = $START.discretizedHEX1.thermalElementA[1].deltaE_system discretizedHEX1.thermalElementA[2].deltaE_system = $START.discretizedHEX1.thermalElementA[2].deltaE_system discretizedHEX1.thermalElementA[3].deltaE_system = $START.discretizedHEX1.thermalElementA[3].deltaE_system discretizedHEX2.thermalElementB[1].deltaE_system = $START.discretizedHEX2.thermalElementB[1].deltaE_system discretizedHEX2.thermalElementB[2].deltaE_system = $START.discretizedHEX2.thermalElementB[2].deltaE_system discretizedHEX2.thermalElementB[3].deltaE_system = $START.discretizedHEX2.thermalElementB[3].deltaE_system discretizedHEX2.thermalElementA[1].deltaE_system = $START.discretizedHEX2.thermalElementA[1].deltaE_system discretizedHEX2.thermalElementA[2].deltaE_system = $START.discretizedHEX2.thermalElementA[2].deltaE_system discretizedHEX2.thermalElementA[3].deltaE_system = $START.discretizedHEX2.thermalElementA[3].deltaE_system discretizedHEX4.thermalElementB[1].deltaE_system = $START.discretizedHEX4.thermalElementB[1].deltaE_system discretizedHEX4.thermalElementB[2].deltaE_system = $START.discretizedHEX4.thermalElementB[2].deltaE_system discretizedHEX4.thermalElementB[3].deltaE_system = $START.discretizedHEX4.thermalElementB[3].deltaE_system discretizedHEX4.thermalElementA[1].deltaE_system = $START.discretizedHEX4.thermalElementA[1].deltaE_system discretizedHEX4.thermalElementA[2].deltaE_system = $START.discretizedHEX4.thermalElementA[2].deltaE_system discretizedHEX4.thermalElementA[3].deltaE_system = $START.discretizedHEX4.thermalElementA[3].deltaE_system flowResistance8.m_flow = flowResistance8.m_flow_0 discretizedHEX.inletA.m_flow = discretizedHEX.m_flow_0_A. Notification: Model statistics after passing the back-end for initialization: * Number of independent subsystems: 123 * Number of states: 0 () * Number of discrete variables: 77 (volume.state_in.phase,conductionElement1.state.phase,conductionElement1.outlet.state.phase,basicControlValve.outlet.state.phase,source3.outlet.state.phase,flowResistance7.outlet.state.phase,sink.inlet.state.phase,dynamicPressureOutflow.outlet.state.phase,source2.outlet.state.phase,splitterT2_1.splitterN.outlets[2].state.phase,junctionT2_1.outlet.state.phase,conductionElement.state.phase,flowResistance5.outlet.state.phase,flowResistance5.inlet.state.phase,flowResistance4.outlet.state.phase,receiver.outlet.state.phase,receiver.inlet.state.phase,volumeFlex.inlet.state.phase,source1.outlet.state.phase,sink2.inlet.state.phase,discretizedHEX4.outletA.state.phase,discretizedHEX4.inletA.state.phase,discretizedHEX4.outletB.state.phase,discretizedHEX4.inletB.state.phase,discretizedHEX4.thermalElementA[3].state.phase,discretizedHEX4.thermalElementA[2].state.phase,discretizedHEX4.thermalElementA[2].outlet.state.phase,discretizedHEX4.thermalElementA[1].state.phase,discretizedHEX4.thermalElementA[1].outlet.state.phase,discretizedHEX4.thermalElementB[3].state.phase,discretizedHEX4.thermalElementB[2].state.phase,discretizedHEX4.thermalElementB[2].outlet.state.phase,discretizedHEX4.thermalElementB[1].state.phase,discretizedHEX4.thermalElementB[1].outlet.state.phase,counterFlowNTU.outletB.state.phase,counterFlowNTU.inletB.state.phase,counterFlowNTU.outletA.state.phase,counterFlowNTU.inletA.state.phase,discretizedHEX2.inletA.state.phase,discretizedHEX2.thermalElementA[3].state.phase,discretizedHEX2.thermalElementA[2].state.phase,discretizedHEX2.thermalElementA[2].outlet.state.phase,discretizedHEX2.thermalElementA[1].state.phase,discretizedHEX2.thermalElementA[1].outlet.state.phase,discretizedHEX2.thermalElementB[3].state.phase,discretizedHEX2.thermalElementB[2].state.phase,discretizedHEX2.thermalElementB[2].outlet.state.phase,discretizedHEX2.thermalElementB[1].state.phase,discretizedHEX2.thermalElementB[1].outlet.state.phase,discretizedHEX1.outletA.state.phase,discretizedHEX1.inletA.state.phase,discretizedHEX1.outletB.state.phase,discretizedHEX1.thermalElementA[3].state.phase,discretizedHEX1.thermalElementA[2].state.phase,discretizedHEX1.thermalElementA[2].outlet.state.phase,discretizedHEX1.thermalElementA[1].state.phase,discretizedHEX1.thermalElementA[1].outlet.state.phase,discretizedHEX1.thermalElementB[3].state.phase,discretizedHEX1.thermalElementB[2].state.phase,discretizedHEX1.thermalElementB[2].outlet.state.phase,discretizedHEX1.thermalElementB[1].state.phase,discretizedHEX1.thermalElementB[1].outlet.state.phase,discretizedHEX.inletA.state.phase,discretizedHEX.outletB.state.phase,discretizedHEX.thermalElementA[3].state.phase,discretizedHEX.thermalElementA[2].state.phase,discretizedHEX.thermalElementA[2].outlet.state.phase,discretizedHEX.thermalElementA[1].state.phase,discretizedHEX.thermalElementA[1].outlet.state.phase,discretizedHEX.thermalElementB[3].state.phase,discretizedHEX.thermalElementB[2].state.phase,discretizedHEX.thermalElementB[2].outlet.state.phase,discretizedHEX.thermalElementB[1].state.phase,discretizedHEX.thermalElementB[1].outlet.state.phase,receiver.medium.phase,volume.medium.phase,volumeFlex.medium.phase) * Number of discrete states: 0 () * Number of clocked states: 0 () * Top-level inputs: 0 Notification: Strong component statistics for initialization (814): * Single equations (assignments): 716 * Array equations: 0 * Algorithm blocks: 0 * Record equations: 73 * When equations: 0 * If-equations: 0 * Equation systems (not torn): 2 * Torn equation systems: 23 * Mixed (continuous/discrete) equation systems: 0 Notification: Equation system details (not torn): * Constant Jacobian (size): 0 systems * Linear Jacobian (size,density): 0 systems * Non-linear Jacobian (size): 2 systems {1, 1} * Without analytic Jacobian (size): 0 systems Notification: Torn system details for strict tearing set: * Linear torn systems (#iteration vars, #inner vars, density): 20 systems {(1,4,100.0%), (1,1,100.0%), (4,25,75.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,5,100.0%), (1,5,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,9,100.0%), (2,2,100.0%), (1,8,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%)} * Non-linear torn systems (#iteration vars, #inner vars): 3 systems {(1,1), (2,2), (1,1)} Notification: Performance of prepare postOptimizeDAE: time 0.002515/1.236, allocations: 0.8104 MB / 0.9649 GB, free: 128.2 MB / 0.698 GB Notification: Performance of postOpt lateInlineFunction (simulation): time 0.001692/1.238, allocations: 1.099 MB / 0.966 GB, free: 128.2 MB / 0.698 GB Notification: Performance of postOpt wrapFunctionCalls (simulation): time 0.02126/1.259, allocations: 25.35 MB / 0.9908 GB, free: 125.9 MB / 0.698 GB Notification: Performance of postOpt inlineArrayEqn (simulation): time 0.007949/1.267, allocations: 8.228 MB / 0.9988 GB, free: 124.9 MB / 0.698 GB Notification: Performance of postOpt constantLinearSystem (simulation): time 2.291e-05/1.267, allocations: 19 kB / 0.9988 GB, free: 124.9 MB / 0.698 GB Notification: Performance of postOpt simplifysemiLinear (simulation): time 6.145e-05/1.267, allocations: 49.89 kB / 0.9989 GB, free: 124.9 MB / 0.698 GB Notification: Performance of postOpt removeSimpleEquations (simulation): time 0.02208/1.289, allocations: 19.63 MB / 1.018 GB, free: 122.9 MB / 0.698 GB Notification: Performance of postOpt simplifyComplexFunction (simulation): time 0.00751/1.297, allocations: 7.739 MB / 1.026 GB, free: 120.8 MB / 0.698 GB Notification: Performance of postOpt solveSimpleEquations (simulation): time 0.002956/1.3, allocations: 1.583 MB / 1.027 GB, free: 119.6 MB / 0.698 GB Notification: Performance of postOpt tearingSystem (simulation): time 0.003508/1.303, allocations: 1.824 MB / 1.029 GB, free: 118.4 MB / 0.698 GB Notification: Performance of postOpt inputDerivativesUsed (simulation): time 0.0004016/1.304, allocations: 309.4 kB / 1.029 GB, free: 118.3 MB / 0.698 GB Notification: Performance of postOpt calculateStrongComponentJacobians (simulation): time 0.01334/1.317, allocations: 46.22 MB / 1.074 GB, free: 71.54 MB / 0.698 GB Notification: Performance of postOpt calculateStateSetsJacobians (simulation): time 3.136e-06/1.317, allocations: 7.281 kB / 1.074 GB, free: 71.54 MB / 0.698 GB Notification: Performance of postOpt symbolicJacobian (simulation): time 0.01344/1.331, allocations: 12.1 MB / 1.086 GB, free: 60.58 MB / 0.698 GB Notification: Performance of postOpt removeConstants (simulation): time 0.002624/1.333, allocations: 1.992 MB / 1.088 GB, free: 58.67 MB / 0.698 GB Notification: Performance of postOpt simplifyTimeIndepFuncCalls (simulation): time 0.0006127/1.334, allocations: 218.1 kB / 1.088 GB, free: 58.46 MB / 0.698 GB Notification: Performance of postOpt simplifyAllExpressions (simulation): time 0.001927/1.336, allocations: 343.4 kB / 1.089 GB, free: 58.13 MB / 0.698 GB Notification: Performance of postOpt findZeroCrossings (simulation): time 0.0007732/1.337, allocations: 0.7358 MB / 1.089 GB, free: 57.4 MB / 0.698 GB Notification: Performance of postOpt collapseArrayExpressions (simulation): time 0.0003928/1.337, allocations: 296.5 kB / 1.09 GB, free: 57.11 MB / 0.698 GB Notification: Performance of sorting global known variables: time 0.001712/1.339, allocations: 2.423 MB / 1.092 GB, free: 54.95 MB / 0.698 GB Notification: Performance of sort global known variables: time 8e-08/1.339, allocations: 0.8125 kB / 1.092 GB, free: 54.95 MB / 0.698 GB Notification: Performance of remove unused functions: time 0.01183/1.35, allocations: 4.563 MB / 1.096 GB, free: 50.75 MB / 0.698 GB Notification: Model statistics after passing the back-end for simulation: * Number of independent subsystems: 20 * Number of states: 42 (discretizedHEX.thermalElementB[1].h,discretizedHEX.thermalElementB[2].h,discretizedHEX.thermalElementB[3].h,discretizedHEX.thermalElementA[1].h,discretizedHEX.thermalElementA[2].h,discretizedHEX.thermalElementA[3].h,discretizedHEX1.thermalElementB[1].h,discretizedHEX1.thermalElementB[2].h,discretizedHEX1.thermalElementB[3].h,discretizedHEX1.thermalElementA[1].h,discretizedHEX1.thermalElementA[2].h,discretizedHEX1.thermalElementA[3].h,discretizedHEX2.thermalElementB[1].h,discretizedHEX2.thermalElementB[2].h,discretizedHEX2.thermalElementB[3].h,discretizedHEX2.thermalElementA[1].h,discretizedHEX2.thermalElementA[2].h,discretizedHEX2.thermalElementA[3].h,counterFlowNTU.h_out_A,counterFlowNTU.h_out_B,volume.M,volume.U_med,discretizedHEX4.thermalElementB[1].h,discretizedHEX4.thermalElementB[2].h,discretizedHEX4.thermalElementB[3].h,discretizedHEX4.thermalElementA[1].h,discretizedHEX4.thermalElementA[2].h,discretizedHEX4.thermalElementA[3].h,volumeFlex.M,volumeFlex.U_med,receiver.M,receiver.U_med,flowResistance1.inlet.m_flow,flowResistance2.inlet.m_flow,flowResistance3.inlet.m_flow,conductionElement.inlet.m_flow,conductionElement.h,flowResistance6.inlet.m_flow,conductionElement1.inlet.m_flow,conductionElement1.h,pump.m_flow,flowResistance8.inlet.m_flow) * Number of discrete variables: 190 (counterFlowNTU.outletB.state.phase,discretizedHEX2.thermalElementB[1].outlet.state.phase,discretizedHEX2.thermalElementB[2].outlet.state.phase,receiver.inlet.state.phase,counterFlowNTU.inletB.state.phase,conductionElement1.outlet.state.phase,basicControlValve.outlet.state.phase,sink.inlet.state.phase,counterFlowNTU.outletA.state.phase,counterFlowNTU.inletA.state.phase,discretizedHEX4.outletA.state.phase,discretizedHEX4.thermalElementA[2].outlet.state.phase,discretizedHEX4.thermalElementA[1].outlet.state.phase,discretizedHEX4.inletA.state.phase,sink2.inlet.state.phase,receiver.outlet.state.phase,junctionT2_1.outlet.state.phase,flowResistance5.outlet.state.phase,flowResistance5.inlet.state.phase,discretizedHEX4.inletB.state.phase,discretizedHEX4.thermalElementB[2].outlet.state.phase,discretizedHEX4.outletB.state.phase,discretizedHEX4.thermalElementB[1].outlet.state.phase,flowResistance4.outlet.state.phase,volumeFlex.inlet.state.phase,discretizedHEX2.thermalElementA[2].outlet.state.phase,discretizedHEX2.thermalElementA[1].outlet.state.phase,discretizedHEX2.inletA.state.phase,discretizedHEX.outletB.state.phase,discretizedHEX.thermalElementB[2].outlet.state.phase,discretizedHEX.thermalElementB[1].outlet.state.phase,discretizedHEX1.outletA.state.phase,discretizedHEX1.thermalElementA[2].outlet.state.phase,discretizedHEX1.thermalElementA[1].outlet.state.phase,discretizedHEX1.inletA.state.phase,discretizedHEX1.outletB.state.phase,discretizedHEX1.thermalElementB[2].outlet.state.phase,discretizedHEX1.thermalElementB[1].outlet.state.phase,discretizedHEX.thermalElementA[2].outlet.state.phase,splitterT2_1.splitterN.outlets[2].state.phase,discretizedHEX.thermalElementA[1].outlet.state.phase,$cse7.phase,$cse8,$cse10.phase,$cse11,$cse12.phase,$cse13,$cse14.phase,$cse15,$cse16.phase,$cse17,$cse18.phase,$cse19,$cse20.phase,$cse21,$cse24.phase,$cse25,$cse26.phase,$cse27,$cse28.phase,$cse29,$cse30.phase,$cse31,$cse34.phase,$cse35,$cse40.phase,$cse41,$cse42.phase,$cse43,$cse44.phase,$cse45,$cse47.phase,$cse48,$cse50.phase,$cse51,$cse53.phase,$cse54,$cse55.phase,$cse56,$cse57.phase,$cse58,$cse59.phase,$cse60,$cse62.phase,$cse63,$cse65.phase,$cse66,$cse68.phase,$cse69,$cse70.phase,$cse71,$cse72.phase,$cse73,$cse74.phase,$cse75,$cse78.phase,$cse79,$cse82.phase,$cse83,$cse86.phase,$cse87,$cse88.phase,$cse89,$cse90.phase,$cse91,$cse92.phase,$cse93,$cse96.phase,$cse97,$cse100.phase,$cse101,$cse104.phase,$cse105,$cse106.phase,$cse108.phase,$cse110.phase,$cse113.phase,$cse114.phase,$cse115.phase,$cse116.phase,$cse117.phase,$cse118,$cse119.phase,$cse120,$cse122.phase,$cse124.phase,$cse126.phase,$cse128.phase,$cse130.phase,$cse132.phase,$cse135.phase,$cse136,$cse137.phase,$cse138,$cse139.phase,$cse140,$cse141.phase,$cse142,$cse148.phase,$cse149,$cse150.phase,$cse151.phase,$cse154.phase,$cse155,$cse156.phase,$cse157,$cse158.phase,$cse159,$cse160.phase,$cse161,$cse162.phase,$cse163,$cse168.phase,$cse169,$cse170.phase,$cse171,$cse174.phase,$cse175,$cse176.phase,$cse177,discretizedHEX.thermalElementB[1].state.phase,discretizedHEX.thermalElementB[2].state.phase,discretizedHEX.thermalElementB[3].state.phase,discretizedHEX.thermalElementA[1].state.phase,discretizedHEX.thermalElementA[2].state.phase,discretizedHEX.thermalElementA[3].state.phase,discretizedHEX1.thermalElementB[1].state.phase,discretizedHEX1.thermalElementB[2].state.phase,discretizedHEX1.thermalElementB[3].state.phase,discretizedHEX1.thermalElementA[1].state.phase,discretizedHEX1.thermalElementA[2].state.phase,discretizedHEX1.thermalElementA[3].state.phase,discretizedHEX2.thermalElementB[1].state.phase,discretizedHEX2.thermalElementB[2].state.phase,discretizedHEX2.thermalElementB[3].state.phase,discretizedHEX2.thermalElementA[1].state.phase,discretizedHEX2.thermalElementA[2].state.phase,discretizedHEX2.thermalElementA[3].state.phase,discretizedHEX4.thermalElementB[1].state.phase,discretizedHEX4.thermalElementB[2].state.phase,discretizedHEX4.thermalElementB[3].state.phase,discretizedHEX4.thermalElementA[1].state.phase,discretizedHEX4.thermalElementA[2].state.phase,discretizedHEX4.thermalElementA[3].state.phase,conductionElement.state.phase,dynamicPressureOutflow.outlet.state.phase,flowResistance7.outlet.state.phase,conductionElement1.state.phase,discretizedHEX.inletA.state.phase,source3.outlet.state.phase) * Number of discrete states: 0 () * Number of clocked states: 0 () * Top-level inputs: 0 Notification: Strong component statistics for simulation (939): * Single equations (assignments): 808 * Array equations: 0 * Algorithm blocks: 0 * Record equations: 105 * When equations: 0 * If-equations: 0 * Equation systems (not torn): 0 * Torn equation systems: 26 * Mixed (continuous/discrete) equation systems: 0 Notification: Torn system details for strict tearing set: * Linear torn systems (#iteration vars, #inner vars, density): 23 systems {(1,5,100.0%), (1,3,100.0%), (1,3,100.0%), (2,2,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,3,100.0%), (1,1,100.0%), (4,25,75.0%), (1,5,100.0%), (1,1,100.0%), (1,8,100.0%), (2,2,100.0%), (1,1,100.0%), (1,9,100.0%), (1,4,100.0%)} * Non-linear torn systems (#iteration vars, #inner vars): 3 systems {(1,3), (2,4), (1,3)} Notification: Performance of Backend phase and start with SimCode phase: time 0.03928/1.39, allocations: 18.84 MB / 1.115 GB, free: 32.82 MB / 0.698 GB Notification: Performance of simCode: created initialization part: time 0.01149/1.401, allocations: 11.34 MB / 1.126 GB, free: 21.11 MB / 0.698 GB Notification: Performance of simCode: created event and clocks part: time 9.458e-06/1.401, allocations: 4.5 kB / 1.126 GB, free: 21.1 MB / 0.698 GB Notification: Performance of simCode: created simulation system equations: time 0.006081/1.407, allocations: 8.93 MB / 1.135 GB, free: 11.89 MB / 0.698 GB Notification: Performance of simCode: created of all other equations (e.g. parameter, nominal, assert, etc): time 0.01112/1.418, allocations: 5.127 MB / 1.14 GB, free: 7.109 MB / 0.698 GB Notification: Performance of simCode: created linear, non-linear and system jacobian parts: time 0.02455/1.443, allocations: 22.13 MB / 1.161 GB, free: 1.113 MB / 0.7137 GB Notification: Performance of simCode: some other stuff during SimCode phase: time 0.2194/1.662, allocations: 2.671 MB / 1.164 GB, free: 164.6 MB / 0.7137 GB Notification: Performance of simCode: alias equations: time 0.007085/1.669, allocations: 3.91 MB / 1.168 GB, free: 164.4 MB / 0.7137 GB Notification: Performance of simCode: all other stuff during SimCode phase: time 0.006643/1.676, allocations: 3.849 MB / 1.171 GB, free: 164.4 MB / 0.7137 GB Notification: Performance of SimCode: time 1.512e-06/1.676, allocations: 0 / 1.171 GB, free: 164.4 MB / 0.7137 GB Notification: Performance of Templates: time 0.5121/2.188, allocations: 317.1 MB / 1.481 GB, free: 207.2 MB / 0.7605 GB " [Timeout remaining time 658] make -j1 -f ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.makefile [Timeout 660] (rm -f ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.pipe ; mkfifo ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.pipe ; head -c 1048576 < ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.pipe >> ../files/ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.sim & ./ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia -abortSlowSimulation -alarm=240 -emit_protected -lv LOG_STATS > ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.pipe 2>&1) [Timeout 240] diffSimulationResults("ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat","/mnt/ReferenceFiles/ThermofluidStream-main-regression/ReferenceData/ThermofluidStream.Media.Tests.TestXRGMedia_ref.mat","",relTol=0.003,relTolDiffMinMax=0.003,rangeDelta=0.001) [Timeout 660] "Error: Could not read variable CPUtime in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable CPUtime from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable EventCounter in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable EventCounter from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[1].Calls in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[1].Calls from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[1].Iterations in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[1].Iterations from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[1].Jacobians in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[1].Jacobians from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[1].Residues in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[1].Residues from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[2].Calls in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[2].Calls from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[2].Iterations in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[2].Iterations from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[2].Jacobians in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[2].Jacobians from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.initialization[2].Residues in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.initialization[2].Residues from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[1].Calls in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[1].Calls from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[1].Iterations in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[1].Iterations from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[1].Jacobians in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[1].Jacobians from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[1].Residues in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[1].Residues from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[2].Calls in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[2].Calls from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[2].Iterations in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[2].Iterations from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[2].Jacobians in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[2].Jacobians from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[2].Residues in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[2].Residues from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[3].Calls in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[3].Calls from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[3].Iterations in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[3].Iterations from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[3].Jacobians in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[3].Jacobians from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable NonlinearSystems.simulation[3].Residues in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable NonlinearSystems.simulation[3].Residues from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable basicControlValve.secondsPerHour in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable basicControlValve.secondsPerHour from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable counterFlowNTU.eps in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable counterFlowNTU.eps from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementA[1].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementA[1].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementA[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementA[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementA[2].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementA[2].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementA[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementA[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementA[3].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementA[3].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementA[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementA[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[1].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[1].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[1].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[1].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[2].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[2].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[2].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[2].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[3].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[3].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[3].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[3].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX.thermalElementB[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX.thermalElementB[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementA[1].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementA[1].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementA[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementA[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementA[2].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementA[2].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementA[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementA[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementA[3].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementA[3].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementA[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementA[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[1].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[1].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[1].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[1].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[2].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[2].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[2].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[2].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[3].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[3].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[3].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[3].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX1.thermalElementB[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX1.thermalElementB[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementA[1].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementA[1].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementA[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementA[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementA[2].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementA[2].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementA[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementA[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementA[3].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementA[3].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementA[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementA[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[1].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[1].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[1].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[1].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[2].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[2].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[2].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[2].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[3].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[3].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[3].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[3].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX2.thermalElementB[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX2.thermalElementB[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementA[1].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementA[1].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementA[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementA[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementA[2].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementA[2].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementA[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementA[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementA[3].Re_exp in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementA[3].Re_exp from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementA[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementA[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[1].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[1].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[1].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[1].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[1].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[1].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[2].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[2].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[2].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[2].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[2].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[2].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[3].Re_exp_cond in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[3].Re_exp_cond from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[3].Re_exp_evap in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[3].Re_exp_evap from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable discretizedHEX4.thermalElementB[3].U_min in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable discretizedHEX4.thermalElementB[3].U_min from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable dropOfCommons.instanceNameColor[1] in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable dropOfCommons.instanceNameColor[1] from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable dropOfCommons.instanceNameColor[2] in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable dropOfCommons.instanceNameColor[2] from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable dropOfCommons.instanceNameColor[3] in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable dropOfCommons.instanceNameColor[3] from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable flowResistance1.inlet.state.der(d) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable flowResistance1.inlet.state.der(d) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable junctionT2_1.junctionN.inlets[2].der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable junctionT2_1.junctionN.inlets[2].der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable pump.inlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable pump.inlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable receiver.der(m_flow_in) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable receiver.der(m_flow_in) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable receiver.medium.state.der(d) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable receiver.medium.state.der(d) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable sink.inlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable sink.inlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable sink2.inlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable sink2.inlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable sink3.inlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable sink3.inlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable sink4.inlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable sink4.inlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable source.outlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable source.outlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable source1.outlet.der(m_flow) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable source1.outlet.der(m_flow) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable volume.der(m_flow_in) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable volume.der(m_flow_in) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable volume.der(m_flow_out) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable volume.der(m_flow_out) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! Error: Could not read variable volumeFlex.medium.state.der(d) in file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat. Warning: Get data of variable volumeFlex.medium.state.der(d) from file ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat failed! " [Timeout remaining time 660] "" Variables in the reference:CPUtime,EventCounter,NonlinearSystems.initialization[1].Calls,NonlinearSystems.initialization[1].Iterations,NonlinearSystems.initialization[1].Jacobians,NonlinearSystems.initialization[1].Residues,NonlinearSystems.initialization[2].Calls,NonlinearSystems.initialization[2].Iterations,NonlinearSystems.initialization[2].Jacobians,NonlinearSystems.initialization[2].Residues,NonlinearSystems.simulation[1].Calls,NonlinearSystems.simulation[1].Iterations,NonlinearSystems.simulation[1].Jacobians,NonlinearSystems.simulation[1].Residues,NonlinearSystems.simulation[2].Calls,NonlinearSystems.simulation[2].Iterations,NonlinearSystems.simulation[2].Jacobians,NonlinearSystems.simulation[2].Residues,NonlinearSystems.simulation[3].Calls,NonlinearSystems.simulation[3].Iterations,NonlinearSystems.simulation[3].Jacobians,NonlinearSystems.simulation[3].Residues,Time,basicControlValve.Cvs_UK,basicControlValve.Cvs_US,basicControlValve.Kvs,basicControlValve.L,basicControlValve.V_flow_ref,basicControlValve.clip_p_out,basicControlValve.dp,basicControlValve.dp_ref,basicControlValve.dr_corr,basicControlValve.flowCoefficient,basicControlValve.h_in,basicControlValve.h_out,basicControlValve.initM_flow,der(basicControlValve.inlet.m_flow),basicControlValve.inlet.m_flow,basicControlValve.inlet.r,basicControlValve.inlet.state.T,basicControlValve.inlet.state.d,basicControlValve.inlet.state.h,basicControlValve.inlet.state.p,basicControlValve.inlet.state.phase,basicControlValve.k_min,basicControlValve.k_u,basicControlValve.m_acceleration_0,basicControlValve.m_flow,basicControlValve.m_flowStateSelect,basicControlValve.m_flow_0,basicControlValve.m_flow_ref,basicControlValve.m_flow_ref_set,basicControlValve.outlet.m_flow,basicControlValve.outlet.r,basicControlValve.outlet.state.T,basicControlValve.outlet.state.d,basicControlValve.outlet.state.h,basicControlValve.outlet.state.p,basicControlValve.outlet.state.phase,basicControlValve.p_in,basicControlValve.p_min,basicControlValve.p_out,basicControlValve.rho,basicControlValve.rho_ref,basicControlValve.secondsPerHour,basicControlValve.u,basicControlValve.u_in,conductionElement.A,conductionElement.L,conductionElement.M,conductionElement.Q_flow,conductionElement.T,conductionElement.T_0,conductionElement.T_e,conductionElement.T_heatPort,conductionElement.U,conductionElement.U_internal,conductionElement.V,conductionElement.clip_p_out,conductionElement.deltaE_system,der(conductionElement.h),conductionElement.dp,conductionElement.dr_corr,conductionElement.h,conductionElement.h_0,conductionElement.h_in,conductionElement.h_in_norm,conductionElement.h_out,conductionElement.heatPort.Q_flow,conductionElement.heatPort.T,conductionElement.init,conductionElement.initM_flow,der(conductionElement.inlet.m_flow),conductionElement.inlet.m_flow,conductionElement.inlet.r,conductionElement.inlet.state.T,conductionElement.inlet.state.d,conductionElement.inlet.state.h,conductionElement.inlet.state.p,conductionElement.inlet.state.phase,conductionElement.k,conductionElement.k_internal,conductionElement.k_par,conductionElement.m_acceleration_0,conductionElement.m_flow,conductionElement.m_flowStateSelect,conductionElement.m_flow_0,conductionElement.m_flow_assert,conductionElement.outlet.m_flow,conductionElement.outlet.r,conductionElement.outlet.state.T,conductionElement.outlet.state.d,conductionElement.outlet.state.h,conductionElement.outlet.state.p,conductionElement.outlet.state.phase,conductionElement.p_in,conductionElement.p_min,conductionElement.p_out,conductionElement.rho,conductionElement.rho_min,conductionElement.state.T,conductionElement.state.d,conductionElement.state.h,conductionElement.state.p,conductionElement.state.phase,conductionElement1.A,conductionElement1.L,conductionElement1.M,conductionElement1.Q_flow,conductionElement1.T,conductionElement1.T_0,conductionElement1.T_e,conductionElement1.T_heatPort,conductionElement1.U,conductionElement1.U_internal,conductionElement1.V,conductionElement1.clip_p_out,conductionElement1.deltaE_system,der(conductionElement1.h),conductionElement1.dp,conductionElement1.dr_corr,conductionElement1.h,conductionElement1.h_0,conductionElement1.h_in,conductionElement1.h_in_norm,conductionElement1.h_out,conductionElement1.heatPort.Q_flow,conductionElement1.heatPort.T,conductionElement1.init,conductionElement1.initM_flow,der(conductionElement1.inlet.m_flow),conductionElement1.inlet.m_flow,conductionElement1.inlet.r,conductionElement1.inlet.state.T,conductionElement1.inlet.state.d,conductionElement1.inlet.state.h,conductionElement1.inlet.state.p,conductionElement1.inlet.state.phase,conductionElement1.k,conductionElement1.k_internal,conductionElement1.k_par,conductionElement1.m_acceleration_0,conductionElement1.m_flow,conductionElement1.m_flowStateSelect,conductionElement1.m_flow_0,conductionElement1.m_flow_assert,conductionElement1.outlet.m_flow,conductionElement1.outlet.r,conductionElement1.outlet.state.T,conductionElement1.outlet.state.d,conductionElement1.outlet.state.h,conductionElement1.outlet.state.p,conductionElement1.outlet.state.phase,conductionElement1.p_in,conductionElement1.p_min,conductionElement1.p_out,conductionElement1.rho,conductionElement1.rho_min,conductionElement1.state.T,conductionElement1.state.d,conductionElement1.state.h,conductionElement1.state.p,conductionElement1.state.phase,const.k,const.y,counterFlowNTU.A,counterFlowNTU.C_A,counterFlowNTU.C_B,counterFlowNTU.C_max,counterFlowNTU.C_min,counterFlowNTU.C_r,counterFlowNTU.Delta_T_max,counterFlowNTU.L,counterFlowNTU.NTU,counterFlowNTU.TC,counterFlowNTU.T_in_MediumA,counterFlowNTU.T_in_MediumB,counterFlowNTU.cpA_in,counterFlowNTU.cpA_out,counterFlowNTU.cpB_in,counterFlowNTU.cpB_out,counterFlowNTU.cp_A,counterFlowNTU.cp_B,der(counterFlowNTU.h_out_A),der(counterFlowNTU.h_out_B),der(counterFlowNTU.inletA_m_flow),der(counterFlowNTU.inletB_m_flow),counterFlowNTU.dh_A,counterFlowNTU.dh_B,counterFlowNTU.effectiveness,counterFlowNTU.eps,counterFlowNTU.h_in_A,counterFlowNTU.h_in_B,counterFlowNTU.h_out_A,counterFlowNTU.h_out_B,counterFlowNTU.inletA.m_flow,counterFlowNTU.inletA.r,counterFlowNTU.inletA.state.T,counterFlowNTU.inletA.state.d,counterFlowNTU.inletA.state.h,counterFlowNTU.inletA.state.p,counterFlowNTU.inletA.state.phase,counterFlowNTU.inletA_m_flow,counterFlowNTU.inletA_r,counterFlowNTU.inletA_state.T,counterFlowNTU.inletA_state.d,counterFlowNTU.inletA_state.h,counterFlowNTU.inletA_state.p,counterFlowNTU.inletA_state.phase,counterFlowNTU.inletB.m_flow,counterFlowNTU.inletB.r,counterFlowNTU.inletB.state.T,counterFlowNTU.inletB.state.d,counterFlowNTU.inletB.state.h,counterFlowNTU.inletB.state.p,counterFlowNTU.inletB.state.phase,counterFlowNTU.inletB_m_flow,counterFlowNTU.inletB_r,counterFlowNTU.inletB_state.T,counterFlowNTU.inletB_state.d,counterFlowNTU.inletB_state.h,counterFlowNTU.inletB_state.p,counterFlowNTU.inletB_state.phase,counterFlowNTU.k_NTU,counterFlowNTU.m_flow_A,counterFlowNTU.m_flow_B,counterFlowNTU.m_flow_reg,counterFlowNTU.outletA.m_flow,counterFlowNTU.outletA.r,counterFlowNTU.outletA.state.T,counterFlowNTU.outletA.state.d,counterFlowNTU.outletA.state.h,counterFlowNTU.outletA.state.p,counterFlowNTU.outletA.state.phase,counterFlowNTU.outletA_m_flow,counterFlowNTU.outletA_r,counterFlowNTU.outletA_state.T,counterFlowNTU.outletA_state.d,counterFlowNTU.outletA_state.h,counterFlowNTU.outletA_state.p,counterFlowNTU.outletA_state.phase,counterFlowNTU.outletB.m_flow,counterFlowNTU.outletB.r,counterFlowNTU.outletB.state.T,counterFlowNTU.outletB.state.d,counterFlowNTU.outletB.state.h,counterFlowNTU.outletB.state.p,counterFlowNTU.outletB.state.phase,counterFlowNTU.outletB_m_flow,counterFlowNTU.outletB_r,counterFlowNTU.outletB_state.T,counterFlowNTU.outletB_state.d,counterFlowNTU.outletB_state.h,counterFlowNTU.outletB_state.p,counterFlowNTU.outletB_state.phase,counterFlowNTU.p_A,counterFlowNTU.p_B,counterFlowNTU.q_flow,counterFlowNTU.q_flowA,counterFlowNTU.q_flowB,counterFlowNTU.q_max,counterFlowNTU.summary.Q_flow_A,counterFlowNTU.summary.Q_flow_B,counterFlowNTU.summary.Tin_A,counterFlowNTU.summary.Tin_B,counterFlowNTU.summary.Tout_A,counterFlowNTU.summary.Tout_B,counterFlowNTU.summary.dT_A,counterFlowNTU.summary.dT_B,counterFlowNTU.summary.dh_A,counterFlowNTU.summary.dh_B,counterFlowNTU.summary.efficiency,counterFlowNTU.summary.hin_A,counterFlowNTU.summary.hin_B,counterFlowNTU.summary.hout_A,counterFlowNTU.summary.hout_B,discretizedHEX.A,discretizedHEX.G,discretizedHEX.M_A,discretizedHEX.M_B,discretizedHEX.Q_flow_A,discretizedHEX.Q_flow_B,discretizedHEX.V_Hex,discretizedHEX.deltaE_system,discretizedHEX.inletA.m_flow,discretizedHEX.inletA.r,discretizedHEX.inletA.state.T,discretizedHEX.inletA.state.d,discretizedHEX.inletA.state.h,discretizedHEX.inletA.state.p,discretizedHEX.inletA.state.phase,discretizedHEX.inletA_m_flow,discretizedHEX.inletA_r,discretizedHEX.inletA_state.T,discretizedHEX.inletA_state.d,discretizedHEX.inletA_state.h,discretizedHEX.inletA_state.p,discretizedHEX.inletA_state.phase,discretizedHEX.inletB.m_flow,discretizedHEX.inletB.r,discretizedHEX.inletB.state.T,discretizedHEX.inletB.state.d,discretizedHEX.inletB.state.h,discretizedHEX.inletB.state.p,discretizedHEX.inletB.state.phase,discretizedHEX.inletB_m_flow,discretizedHEX.inletB_r,discretizedHEX.inletB_state.T,discretizedHEX.inletB_state.d,discretizedHEX.inletB_state.h,discretizedHEX.inletB_state.p,discretizedHEX.inletB_state.phase,discretizedHEX.k_wall,discretizedHEX.m_flow_0_A,discretizedHEX.m_flow_0_B,discretizedHEX.m_flow_assert,discretizedHEX.nCells,discretizedHEX.nCellsParallel,discretizedHEX.outletA.m_flow,discretizedHEX.outletA.r,discretizedHEX.outletA.state.T,discretizedHEX.outletA.state.d,discretizedHEX.outletA.state.h,discretizedHEX.outletA.state.p,discretizedHEX.outletA.state.phase,discretizedHEX.outletA_m_flow,discretizedHEX.outletA_r,discretizedHEX.outletA_state.T,discretizedHEX.outletA_state.d,discretizedHEX.outletA_state.h,discretizedHEX.outletA_state.p,discretizedHEX.outletA_state.phase,discretizedHEX.outletB.m_flow,discretized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_color,flowResistance6.dr_corr,flowResistance6.h_in,flowResistance6.h_out,flowResistance6.initM_flow,der(flowResistance6.inlet.m_flow),flowResistance6.inlet.m_flow,flowResistance6.inlet.r,flowResistance6.inlet.state.T,flowResistance6.inlet.state.d,flowResistance6.inlet.state.h,flowResistance6.inlet.state.p,flowResistance6.inlet.state.phase,flowResistance6.l,flowResistance6.m_acceleration_0,flowResistance6.m_flow,flowResistance6.m_flowStateSelect,flowResistance6.m_flow_0,flowResistance6.mu_in,flowResistance6.outlet.m_flow,flowResistance6.outlet.r,flowResistance6.outlet.state.T,flowResistance6.outlet.state.d,flowResistance6.outlet.state.h,flowResistance6.outlet.state.p,flowResistance6.outlet.state.phase,flowResistance6.p_in,flowResistance6.p_min,flowResistance6.p_out,flowResistance6.perimeter,flowResistance6.perimeterInput,flowResistance6.phi,flowResistance6.pressureDropSignificantDigits,flowResistance6.r,flowResistance6.rho_in,flowResistance6.rho_min,flowResistance6.shape,flowResistance7.D_h,flowResistance7.L,flowResistance7.L_value,flowResistance7.a,flowResistance7.areaCross,flowResistance7.areaCrossInput,flowResistance7.areaHydraulic,flowResistance7.b,flowResistance7.clip_p_out,flowResistance7.dp,flowResistance7.dp_ref_color,flowResistance7.dr_corr,flowResistance7.h_in,flowResistance7.h_out,flowResistance7.initM_flow,der(flowResistance7.inlet.m_flow),flowResistance7.inlet.m_flow,flowResistance7.inlet.r,flowResistance7.inlet.state.T,flowResistance7.inlet.state.d,flowResistance7.inlet.state.h,flowResistance7.inlet.state.p,flowResistance7.inlet.state.phase,flowResistance7.l,flowResistance7.m_acceleration_0,flowResistance7.m_flow,flowResistance7.m_flowStateSelect,flowResistance7.m_flow_0,flowResistance7.mu_in,flowResistance7.outlet.m_flow,flowResistance7.outlet.r,flowResistance7.outlet.state.T,flowResistance7.outlet.state.d,flowResistance7.outlet.state.h,flowResistance7.outlet.state.p,flowResistance7.outlet.state.phase,flowResistance7.p_in,flowResistance7.p_min,flowResistance7.p_out,flowResistance7.perimeter,flowResistance7.perimeterInput,flowResistance7.phi,flowResistance7.pressureDropSignificantDigits,flowResistance7.r,flowResistance7.rho_in,flowResistance7.rho_min,flowResistance7.shape,flowResistance8.D_h,flowResistance8.L,flowResistance8.L_value,flowResistance8.a,flowResistance8.areaCross,flowResistance8.areaCrossInput,flowResistance8.areaHydraulic,flowResistance8.b,flowResistance8.clip_p_out,flowResistance8.dp,flowResistance8.dp_ref_color,flowResistance8.dr_corr,flowResistance8.h_in,flowResistance8.h_out,flowResistance8.initM_flow,der(flowResistance8.inlet.m_flow),flowResistance8.inlet.m_flow,flowResistance8.inlet.r,flowResistance8.inlet.state.T,flowResistance8.inlet.state.d,flowResistance8.inlet.state.h,flowResistance8.inlet.state.p,flowResistance8.inlet.state.phase,flowResistance8.l,flowResistance8.m_acceleration_0,flowResistance8.m_flow,flowResistance8.m_flowStateSelect,flowResistance8.m_flow_0,flowResistance8.mu_in,flowResistance8.outlet.m_flow,flowResistance8.outlet.r,flowResistance8.outlet.state.T,flowResistance8.outlet.state.d,flowResistance8.outlet.state.h,flowResistance8.outlet.state.p,flowResistance8.outlet.state.phase,flowResistance8.p_in,flowResistance8.p_min,flowResistance8.p_out,flowResistance8.perimeter,flowResistance8.perimeterInput,flowResistance8.phi,flowResistance8.pressureDropSignificantDigits,flowResistance8.r,flowResistance8.rho_in,flowResistance8.rho_min,flowResistance8.shape,junctionT2_1.L,junctionT2_1.inletA.m_flow,junctionT2_1.inletA.r,junctionT2_1.inletA.state.T,junctionT2_1.inletA.state.d,junctionT2_1.inletA.state.h,junctionT2_1.inletA.state.p,junctionT2_1.inletA.state.phase,junctionT2_1.inletB.m_flow,junctionT2_1.inletB.r,junctionT2_1.inletB.state.T,junctionT2_1.inletB.state.d,junctionT2_1.inletB.state.h,junctionT2_1.inletB.state.p,junctionT2_1.inletB.state.phase,junctionT2_1.junctionN.L,junctionT2_1.junctionN.N,junctionT2_1.junctionN.h[1],junctionT2_1.junctionN.h[2],junctionT2_1.junctionN.h_mix,der(junctionT2_1.junctionN.inlets[1].m_flow),junctionT2_1.junctionN.inlets[1].m_flow,junctionT2_1.junctionN.inlets[1].r,junctionT2_1.junctionN.inlets[1].state.T,junctionT2_1.junctionN.inlets[1].state.d,junctionT2_1.junctionN.inlets[1].state.h,junctionT2_1.junctionN.inlets[1].state.p,junctionT2_1.junctionN.inlets[1].state.phase,der(junctionT2_1.junctionN.inlets[2].m_flow),junctionT2_1.junctionN.inlets[2].m_flow,junctionT2_1.junctionN.inlets[2].r,junctionT2_1.junctionN.inlets[2].state.T,junctionT2_1.junctionN.inlets[2].state.d,junctionT2_1.junctionN.inlets[2].state.h,junctionT2_1.junctionN.inlets[2].state.p,junctionT2_1.junctionN.inlets[2].state.phase,junctionT2_1.junctionN.m_flow_eps,der(junctionT2_1.junctionN.outlet.m_flow),junctionT2_1.junctionN.outlet.m_flow,junctionT2_1.junctionN.outlet.r,junctionT2_1.junctionN.outlet.state.T,junctionT2_1.junctionN.outlet.state.d,junctionT2_1.junctionN.outlet.state.h,junctionT2_1.junctionN.outlet.state.p,junctionT2_1.junctionN.outlet.state.phase,junctionT2_1.junctionN.p[1],junctionT2_1.junctionN.p[2],junctionT2_1.junctionN.p_mix,junctionT2_1.junctionN.r_in[1],junctionT2_1.junctionN.r_in[2],junctionT2_1.junctionN.r_mix,junctionT2_1.junctionN.rho[1],junctionT2_1.junctionN.rho[2],junctionT2_1.junctionN.w2[1],junctionT2_1.junctionN.w2[2],junctionT2_1.junctionN.w[1],junctionT2_1.junctionN.w[2],junctionT2_1.m_flow_eps,junctionT2_1.outlet.m_flow,junctionT2_1.outlet.r,junctionT2_1.outlet.state.T,junctionT2_1.outlet.state.d,junctionT2_1.outlet.state.h,junctionT2_1.outlet.state.p,junctionT2_1.outlet.state.phase,nozzle.A_in,nozzle.A_in_internal,nozzle.A_out,nozzle.A_out_internal,nozzle.L,nozzle.L_value,nozzle.clip_p_out,nozzle.dp,nozzle.dr_corr,nozzle.h_in,nozzle.h_out,nozzle.initM_flow,der(nozzle.inlet.m_flow),nozzle.inlet.m_flow,nozzle.inlet.r,nozzle.inlet.state.T,nozzle.inlet.state.d,nozzle.inlet.state.h,nozzle.inlet.state.p,nozzle.inlet.state.phase,nozzle.m_acceleration_0,nozzle.m_flow,nozzle.m_flowStateSelect,nozzle.m_flow_0,nozzle.outlet.m_flow,nozzle.outlet.r,nozzle.outlet.state.T,nozzle.outlet.state.d,nozzle.outlet.state.h,nozzle.outlet.state.p,nozzle.outlet.state.phase,nozzle.p_in,nozzle.p_min,nozzle.p_out,nozzle.rho_in,nozzle.rho_out,nozzle.v_in,nozzle.v_out,pump.J_p,pump.L,pump.Q_t,pump.W_t,pump.clip_p_out,der(pump.m_flow),pump.dh,pump.dp,pump.dr_corr,pump.eta,pump.h_in,pump.h_out,pump.initM_flow,pump.initOmega,der(pump.inlet.m_flow),pump.inlet.m_flow,pump.inlet.r,pump.inlet.state.T,pump.inlet.state.d,pump.inlet.state.h,pump.inlet.state.p,pump.inlet.state.phase,pump.m_acceleration_0,pump.m_flow,pump.m_flowStateSelect,pump.m_flow_0,pump.m_flow_reg,pump.max_rel_volume,pump.omega,pump.omegaStateSelect,pump.omega_0,pump.omega_dot_0,pump.omega_input,pump.omega_reg,pump.outlet.m_flow,pump.outlet.r,pump.outlet.state.T,pump.outlet.state.d,pump.outlet.state.h,pump.outlet.state.p,pump.outlet.state.phase,pump.outputQuantity,pump.p_in,pump.p_min,pump.p_out,pump.phi,pump.phi_0,pump.rho_min,pump.tau,pump.tau_normalized,pump.tau_st,pump.v_in,pump.v_out,ramp.duration,ramp.height,ramp.offset,ramp.startTime,ramp.y,receiver.A,receiver.L,receiver.M,receiver.M_0,receiver.Q_flow,receiver.T_heatPort,receiver.T_start,receiver.U,receiver.U_med,receiver.V,receiver.V_par,receiver.W_v,receiver.d,receiver.d_gas,receiver.d_liq,receiver.density_derp_h,receiver.density_derp_h_set,der(receiver.M),der(receiver.U_med),der(receiver.m_flow_in),der(receiver.m_flow_out),receiver.h_0,receiver.h_bubble,receiver.h_dew,receiver.h_in,receiver.h_out,receiver.h_pipe,receiver.h_start,receiver.init_method,receiver.inlet.m_flow,receiver.inlet.r,receiver.inlet.state.T,receiver.inlet.state.d,receiver.inlet.state.h,receiver.inlet.state.p,receiver.inlet.state.phase,receiver.k_volume_damping,receiver.l_0,receiver.liquid_level,receiver.liquid_level_pipe,receiver.m_flow_assert,receiver.m_flow_in,receiver.m_flow_out,receiver.medium.MM,receiver.medium.R_s,receiver.medium.T,receiver.medium.T_degC,receiver.medium.X[1],receiver.medium.d,der(receiver.medium.h),der(receiver.medium.p),der(receiver.medium.u),receiver.medium.h,receiver.medium.p,receiver.medium.p_bar,receiver.medium.phase,receiver.medium.preferredMediumStates,receiver.medium.quality,receiver.medium.sat.Tsat,receiver.medium.sat.psat,receiver.medium.standardOrderComponents,receiver.medium.state.T,receiver.medium.state.d,der(receiver.medium.state.d),receiver.medium.state.h,receiver.medium.state.p,receiver.medium.state.phase,receiver.medium.u,receiver.outlet.m_flow,receiver.outlet.r,receiver.outlet.state.T,receiver.outlet.state.d,receiver.outlet.state.h,receiver.outlet.state.p,receiver.outlet.state.phase,receiver.p_in,receiver.p_start,receiver.pipe_high,receiver.pipe_low,receiver.r,receiver.r_damping,receiver.r_in,receiver.r_out,receiver.state_in.T,receiver.state_in.d,receiver.state_in.h,receiver.state_in.p,receiver.state_in.phase,receiver.state_out.T,receiver.state_out.d,receiver.state_out.h,receiver.state_out.p,receiver.state_out.phase,receiver.vapor_quality,receiver.x,receiver.x_0,sink.L,der(sink.inlet.m_flow),sink.inlet.m_flow,sink.inlet.r,sink.inlet.state.T,sink.inlet.state.d,sink.inlet.state.h,sink.inlet.state.p,sink.inlet.state.phase,sink.p,sink.p0,sink.p0_par,sink.r,sink1.L,der(sink1.inlet.m_flow),sink1.inlet.m_flow,sink1.inlet.r,sink1.inlet.state.T,sink1.inlet.state.d,sink1.inlet.state.h,sink1.inlet.state.p,sink1.inlet.state.phase,sink1.p,sink1.p0,sink1.p0_par,sink1.r,sink2.L,der(sink2.inlet.m_flow),sink2.inlet.m_flow,sink2.inlet.r,sink2.inlet.state.T,sink2.inlet.state.d,sink2.inlet.state.h,sink2.inlet.state.p,sink2.inlet.state.phase,sink2.p,sink2.p0,sink2.p0_par,sink2.r,sink3.L,der(sink3.inlet.m_flow),sink3.inlet.m_flow,sink3.inlet.r,sink3.inlet.state.T,sink3.inlet.state.d,sink3.inlet.state.h,sink3.inlet.state.p,sink3.inlet.state.phase,sink3.p,sink3.p0,sink3.p0_par,sink3.r,sink4.L,der(sink4.inlet.m_flow),sink4.inlet.m_flow,sink4.inlet.r,sink4.inlet.state.T,sink4.inlet.state.d,sink4.inlet.state.h,sink4.inlet.state.p,sink4.inlet.state.phase,sink4.p,sink4.p0,sink4.p0_par,sink4.r,source.L,source.T0,source.T0_par,source.h0,source.h0_par,der(source.outlet.m_flow),source.outlet.m_flow,source.outlet.r,source.outlet.state.T,source.outlet.state.d,source.outlet.state.h,source.outlet.state.p,source.outlet.state.phase,source.p0,source.p0_par,source1.L,source1.T0,source1.T0_par,source1.h0,source1.h0_par,der(source1.outlet.m_flow),source1.outlet.m_flow,source1.outlet.r,source1.outlet.state.T,source1.outlet.state.d,source1.outlet.state.h,source1.outlet.state.p,source1.outlet.state.phase,source1.p0,source1.p0_par,source2.L,source2.T0,source2.T0_par,source2.h0,source2.h0_par,der(source2.outlet.m_flow),source2.outlet.m_flow,source2.outlet.r,source2.outlet.state.T,source2.outlet.state.d,source2.outlet.state.h,source2.outlet.state.p,source2.outlet.state.phase,source2.p0,source2.p0_par,source3.L,source3.T0,source3.T0_par,source3.h0,source3.h0_par,der(source3.outlet.m_flow),source3.outlet.m_flow,source3.outlet.r,source3.outlet.state.T,source3.outlet.state.d,source3.outlet.state.h,source3.outlet.state.p,source3.outlet.state.phase,source3.p0,source3.p0_par,splitterT2_1.L,splitterT2_1.inlet.m_flow,splitterT2_1.inlet.r,splitterT2_1.inlet.state.T,splitterT2_1.inlet.state.d,splitterT2_1.inlet.state.h,splitterT2_1.inlet.state.p,splitterT2_1.inlet.state.phase,splitterT2_1.outletA.m_flow,splitterT2_1.outletA.r,splitterT2_1.outletA.state.T,splitterT2_1.outletA.state.d,splitterT2_1.outletA.state.h,splitterT2_1.outletA.state.p,splitterT2_1.outletA.state.phase,splitterT2_1.outletB.m_flow,splitterT2_1.outletB.r,splitterT2_1.outletB.state.T,splitterT2_1.outletB.state.d,splitterT2_1.outletB.state.h,splitterT2_1.outletB.state.p,splitterT2_1.outletB.state.phase,splitterT2_1.splitterN.L,splitterT2_1.splitterN.N,der(splitterT2_1.splitterN.inlet.m_flow),splitterT2_1.splitterN.inlet.m_flow,splitterT2_1.splitterN.inlet.r,splitterT2_1.splitterN.inlet.state.T,splitterT2_1.splitterN.inlet.state.d,splitterT2_1.splitterN.inlet.state.h,splitterT2_1.splitterN.inlet.state.p,splitterT2_1.splitterN.inlet.state.phase,der(splitterT2_1.splitterN.outlets[1].m_flow),splitterT2_1.splitterN.outlets[1].m_flow,splitterT2_1.splitterN.outlets[1].r,splitterT2_1.splitterN.outlets[1].state.T,splitterT2_1.splitterN.outlets[1].state.d,splitterT2_1.splitterN.outlets[1].state.h,splitterT2_1.splitterN.outlets[1].state.p,splitterT2_1.splitterN.outlets[1].state.phase,der(splitterT2_1.splitterN.outlets[2].m_flow),splitterT2_1.splitterN.outlets[2].m_flow,splitterT2_1.splitterN.outlets[2].r,splitterT2_1.splitterN.outlets[2].state.T,splitterT2_1.splitterN.outlets[2].state.d,splitterT2_1.splitterN.outlets[2].state.h,splitterT2_1.splitterN.outlets[2].state.p,splitterT2_1.splitterN.outlets[2].state.phase,splitterT2_1.splitterN.r_mix,volume.A,volume.L,volume.M,volume.Q_flow,volume.T_heatPort,volume.T_start,volume.U,volume.U_med,volume.V,volume.V_par,volume.W_v,volume.d,volume.density_derp_h,volume.density_derp_h_set,der(volume.M),der(volume.U_med),der(volume.m_flow_in),der(volume.m_flow_out),volume.h_in,volume.h_out,volume.h_start,volume.k_volume_damping,volume.m_flow_assert,volume.m_flow_in,volume.m_flow_out,volume.medium.MM,volume.medium.R_s,volume.medium.T,volume.medium.T_degC,volume.medium.X[1],volume.medium.d,der(volume.medium.h),der(volume.medium.p),der(volume.medium.u),volume.medium.h,volume.medium.p,volume.medium.p_bar,volume.medium.phase,volume.medium.preferredMediumStates,volume.medium.quality,volume.medium.sat.Tsat,volume.medium.sat.psat,volume.medium.standardOrderComponents,volume.medium.state.T,volume.medium.state.d,volume.medium.state.h,volume.medium.state.p,volume.medium.state.phase,volume.medium.u,volume.outlet.m_flow,volume.outlet.r,volume.outlet.state.T,volume.outlet.state.d,volume.outlet.state.h,volume.outlet.state.p,volume.outlet.state.phase,volume.p_in,volume.p_start,volume.r,volume.r_damping,volume.r_in,volume.r_out,volume.state_in.T,volume.state_in.d,volume.state_in.h,volume.state_in.p,volume.state_in.phase,volume.state_out.T,volume.state_out.d,volume.state_out.h,volume.state_out.p,volume.state_out.phase,volumeFlex.A,volumeFlex.K,volumeFlex.L,volumeFlex.M,volumeFlex.Q_flow,volumeFlex.T_heatPort,volumeFlex.T_start,volumeFlex.U,volumeFlex.U_med,volumeFlex.V,volumeFlex.V_ref,volumeFlex.W_v,volumeFlex.d,volumeFlex.density_derp_h,der(volumeFlex.M),der(volumeFlex.U_med),der(volumeFlex.V),der(volumeFlex.m_flow_in),der(volumeFlex.m_flow_out),volumeFlex.h_in,volumeFlex.h_out,volumeFlex.h_start,volumeFlex.inlet.m_flow,volumeFlex.inlet.r,volumeFlex.inlet.state.T,volumeFlex.inlet.state.d,volumeFlex.inlet.state.h,volumeFlex.inlet.state.p,volumeFlex.inlet.state.phase,volumeFlex.k_volume_damping,volumeFlex.m_flow_assert,volumeFlex.m_flow_in,volumeFlex.m_flow_out,volumeFlex.medium.MM,volumeFlex.medium.R_s,volumeFlex.medium.T,volumeFlex.medium.T_degC,volumeFlex.medium.X[1],volumeFlex.medium.d,der(volumeFlex.medium.h),der(volumeFlex.medium.p),der(volumeFlex.medium.u),volumeFlex.medium.h,volumeFlex.medium.p,volumeFlex.medium.p_bar,volumeFlex.medium.phase,volumeFlex.medium.preferredMediumStates,volumeFlex.medium.quality,volumeFlex.medium.sat.Tsat,volumeFlex.medium.sat.psat,volumeFlex.medium.standardOrderComponents,volumeFlex.medium.state.T,volumeFlex.medium.state.d,der(volumeFlex.medium.state.d),volumeFlex.medium.state.h,volumeFlex.medium.state.p,volumeFlex.medium.state.phase,volumeFlex.medium.u,volumeFlex.outlet.m_flow,volumeFlex.outlet.r,volumeFlex.outlet.state.T,volumeFlex.outlet.state.d,volumeFlex.outlet.state.h,volumeFlex.outlet.state.p,volumeFlex.outlet.state.phase,volumeFlex.p_in,volumeFlex.p_ref,volumeFlex.p_start,volumeFlex.r,volumeFlex.r_damping,volumeFlex.r_in,volumeFlex.r_out,volumeFlex.state_in.T,volumeFlex.state_in.d,volumeFlex.state_in.h,volumeFlex.state_in.p,volumeFlex.state_in.phase,volumeFlex.state_out.T,volumeFlex.state_out.d,volumeFlex.state_out.h,volumeFlex.state_out.p,volumeFlex.state_out.phase Variables in the result:$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState129.T,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState129.d,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState129.h,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState129.p,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState129.phase,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState158.T,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState158.d,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState158.h,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState158.p,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState158.phase,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState711.T,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState711.d,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState711.h,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState711.p,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState711.phase,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState834.T,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState834.d,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState834.h,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState834.p,$TMP_ThermofluidStream_Media_XRGMedia_CO2__ph_ThermodynamicState834.phase,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState324.T,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState324.d,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState324.h,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState324.p,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState324.phase,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState353.T,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState353.d,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState353.h,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState353.p,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState353.phase,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState400.T,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState400.d,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState400.h,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState400.p,$TMP_ThermofluidStream_Media_XRGMedia_NH3__ph_ThermodynamicState400.phase,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState459.T,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState459.d,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState459.h,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState459.p,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState459.phase,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState488.T,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState488.d,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState488.h,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState488.p,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState488.phase,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState507.T,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState507.d,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState507.h,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState507.p,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState507.phase,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState519.T,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState519.d,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState519.h,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState519.p,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState519.phase,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState569.T,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState569.d,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState569.h,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState569.p,$TMP_ThermofluidStream_Media_XRGMedia_R1234yf__ph_ThermodynamicState569.phase,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1495.T,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1495.d,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1495.h,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1495.p,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1495.phase,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1503.T,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1503.d,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_ThermodynamicState1503.h,$TMP_ThermofluidStream_Media_XRGMedia_R134a__ph_Thermodyn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_flow,discretizedHEX4.thermalElementB[2].inlet.r,discretizedHEX4.thermalElementB[2].inlet.state.T,discretizedHEX4.thermalElementB[2].inlet.state.d,discretizedHEX4.thermalElementB[2].inlet.state.h,discretizedHEX4.thermalElementB[2].inlet.state.p,discretizedHEX4.thermalElementB[2].inlet.state.phase,discretizedHEX4.thermalElementB[2].k,discretizedHEX4.thermalElementB[2].m_acceleration_0,discretizedHEX4.thermalElementB[2].m_flow,discretizedHEX4.thermalElementB[2].m_flowStateSelect,discretizedHEX4.thermalElementB[2].m_flow_0,discretizedHEX4.thermalElementB[2].m_flow_assert,discretizedHEX4.thermalElementB[2].m_flow_nom,discretizedHEX4.thermalElementB[2].nCellsParallel,discretizedHEX4.thermalElementB[2].outlet.m_flow,discretizedHEX4.thermalElementB[2].outlet.r,discretizedHEX4.thermalElementB[2].outlet.state.T,discretizedHEX4.thermalElementB[2].outlet.state.d,discretizedHEX4.thermalElementB[2].outlet.state.h,discretizedHEX4.thermalElementB[2].outlet.state.p,discretizedHEX4.thermalElementB[2].outlet.state.phase,discretizedHEX4.thermalElementB[2].p_in,discretizedHEX4.thermalElementB[2].p_min,discretizedHEX4.thermalElementB[2].p_out,discretizedHEX4.thermalElementB[2].rho,discretizedHEX4.thermalElementB[2].rho_min,discretizedHEX4.thermalElementB[2].state.T,discretizedHEX4.thermalElementB[2].state.d,discretizedHEX4.thermalElementB[2].state.h,discretizedHEX4.thermalElementB[2].state.p,discretizedHEX4.thermalElementB[2].state.phase,discretizedHEX4.thermalElementB[2].x,discretizedHEX4.thermalElementB[3].A,discretizedHEX4.thermalElementB[3].L,discretizedHEX4.thermalElementB[3].M,discretizedHEX4.thermalElementB[3].Q_flow,discretizedHEX4.thermalElementB[3].T,discretizedHEX4.thermalElementB[3].T_0,discretizedHEX4.thermalElementB[3].T_e,discretizedHEX4.thermalElementB[3].T_heatPort,discretizedHEX4.thermalElementB[3].U,discretizedHEX4.thermalElementB[3].U_liq,discretizedHEX4.thermalElementB[3].U_liq_nom,discretizedHEX4.thermalElementB[3].U_tp,discretizedHEX4.thermalElementB[3].U_tp_nom,discretizedHEX4.thermalElementB[3].U_vap,discretizedHEX4.thermalElementB[3].U_vap_nom,discretizedHEX4.thermalElementB[3].V,discretizedHEX4.thermalElementB[3].clip_p_out,discretizedHEX4.thermalElementB[3].deltaE_system,discretizedHEX4.thermalElementB[3].delta_x,discretizedHEX4.thermalElementB[3].dp,discretizedHEX4.thermalElementB[3].dr_corr,discretizedHEX4.thermalElementB[3].h,discretizedHEX4.thermalElementB[3].h_0,discretizedHEX4.thermalElementB[3].h_bubble,discretizedHEX4.thermalElementB[3].h_dew,discretizedHEX4.thermalElementB[3].h_in,discretizedHEX4.thermalElementB[3].h_in_norm,discretizedHEX4.thermalElementB[3].h_out,discretizedHEX4.thermalElementB[3].heatPort.Q_flow,discretizedHEX4.thermalElementB[3].heatPort.T,discretizedHEX4.thermalElementB[3].init,discretizedHEX4.thermalElementB[3].initM_flow,discretizedHEX4.thermalElementB[3].inlet.m_flow,discretizedHEX4.thermalElementB[3].inlet.r,discretizedHEX4.thermalElementB[3].inlet.state.T,discretizedHEX4.thermalElementB[3].inlet.state.d,discretizedHEX4.thermalElementB[3].inlet.state.h,discretizedHEX4.thermalElementB[3].inlet.state.p,discretizedHEX4.thermalElementB[3].inlet.state.phase,discretizedHEX4.thermalElementB[3].k,discretizedHEX4.thermalElementB[3].m_acceleration_0,discretizedHEX4.thermalElementB[3].m_flow,discretizedHEX4.thermalElementB[3].m_flowStateSelect,discretizedHEX4.thermalElementB[3].m_flow_0,discretizedHEX4.thermalElementB[3].m_flow_assert,discretizedHEX4.thermalElementB[3].m_flow_nom,discretizedHEX4.thermalElementB[3].nCellsParallel,discretizedHEX4.thermalElementB[3].outlet.m_flow,discretizedHEX4.thermalElementB[3].outlet.r,discretizedHEX4.thermalElementB[3].outlet.state.T,discretizedHEX4.thermalElementB[3].outlet.state.d,discretizedHEX4.thermalElementB[3].outlet.state.h,discretizedHEX4.thermalElementB[3].outlet.state.p,discretizedHEX4.thermalElementB[3].outlet.state.phase,discretizedHEX4.thermalElementB[3].p_in,discretizedHEX4.thermalElementB[3].p_min,discretizedHEX4.thermalElementB[3].p_out,discretizedHEX4.thermalElementB[3].rho,discretizedHEX4.thermalElementB[3].rho_min,discretizedHEX4.thermalElementB[3].state.T,discretizedHEX4.thermalElementB[3].state.d,discretizedHEX4.thermalElementB[3].state.h,discretizedHEX4.thermalElementB[3].state.p,discretizedHEX4.thermalElementB[3].state.phase,discretizedHEX4.thermalElementB[3].x,dropOfCommons.L,dropOfCommons.assertionLevel,dropOfCommons.g,dropOfCommons.k_volume_damping,dropOfCommons.m_flow_reg,dropOfCommons.omega_reg,dropOfCommons.p_min,dropOfCommons.rho_min,dynamicPressureInflow.A,dynamicPressureInflow.A_par,dynamicPressureInflow.L,dynamicPressureInflow.clip_p_out,dynamicPressureInflow.delta_v,dynamicPressureInflow.dp,dynamicPressureInflow.dr_corr,dynamicPressureInflow.h_in,dynamicPressureInflow.h_out,dynamicPressureInflow.initM_flow,dynamicPressureInflow.inlet.m_flow,dynamicPressureInflow.inlet.r,dynamicPressureInflow.inlet.state.T,dynamicPressureInflow.inlet.state.d,dynamicPressureInflow.inlet.state.h,dynamicPressureInflow.inlet.sta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_out,pump.phi,pump.phi_0,pump.rho_min,pump.tau,pump.tau_normalized,pump.tau_st,pump.v_in,pump.v_out,ramp.duration,ramp.height,ramp.offset,ramp.startTime,ramp.y,receiver.A,receiver.L,receiver.M,receiver.M_0,receiver.Q_flow,receiver.T_heatPort,receiver.T_start,receiver.U,receiver.U_med,receiver.V,receiver.V_par,receiver.W_v,receiver.d,receiver.d_gas,receiver.d_liq,receiver.density_derp_h,receiver.density_derp_h_set,receiver.h_0,receiver.h_bubble,receiver.h_dew,receiver.h_in,receiver.h_out,receiver.h_pipe,receiver.h_start,receiver.init_method,receiver.inlet.m_flow,receiver.inlet.r,receiver.inlet.state.T,receiver.inlet.state.d,receiver.inlet.state.h,receiver.inlet.state.p,receiver.inlet.state.phase,receiver.k_volume_damping,receiver.l_0,receiver.liquid_level,receiver.liquid_level_pipe,receiver.m_flow_assert,receiver.m_flow_in,receiver.m_flow_out,receiver.medium.MM,receiver.medium.R_s,receiver.medium.T,receiver.medium.T_degC,receiver.medium.X[1],receiver.medium.d,receiver.medium.h,receiver.medium.p,receiver.medium.p_bar,receiver.medium.phase,receiver.medium.preferredMediumStates,receiver.medium.quality,receiver.medium.sat.Tsat,receiver.medium.sat.psat,receiver.medium.standardOrderComponents,receiver.medium.state.T,receiver.medium.state.d,receiver.medium.state.h,receiver.medium.state.p,receiver.medium.state.phase,receiver.medium.u,receiver.outlet.m_flow,receiver.outlet.r,receiver.outlet.state.T,receiver.outlet.state.d,receiver.outlet.state.h,receiver.outlet.state.p,receiver.outlet.state.phase,receiver.p_in,receiver.p_start,receiver.pipe_high,receiver.pipe_low,receiver.r,receiver.r_damping,receiver.r_in,receiver.r_out,receiver.state_in.T,receiver.state_in.d,receiver.state_in.h,receiver.state_in.p,receiver.state_in.phase,receiver.state_out.T,receiver.state_out.d,receiver.state_out.h,receiver.state_out.p,receiver.state_out.phase,receiver.vapor_quality,receiver.x,receiver.x_0,sink.L,sink.inlet.m_flow,sink.inlet.r,sink.inlet.state.T,sink.inlet.state.d,sink.inlet.state.h,sink.inlet.state.p,sink.inlet.state.phase,sink.p,sink.p0,sink.p0_par,sink.r,sink1.L,sink1.inlet.m_flow,sink1.inlet.r,sink1.inlet.state.T,sink1.inlet.state.d,sink1.inlet.state.h,sink1.inlet.state.p,sink1.inlet.state.phase,sink1.p,sink1.p0,sink1.p0_par,sink1.r,sink2.L,sink2.inlet.m_flow,sink2.inlet.r,sink2.inlet.state.T,sink2.inlet.state.d,sink2.inlet.state.h,sink2.inlet.state.p,sink2.inlet.state.phase,sink2.p,sink2.p0,sink2.p0_par,sink2.r,sink3.L,sink3.inlet.m_flow,sink3.inlet.r,sink3.inlet.state.T,sink3.inlet.state.d,sink3.inlet.state.h,sink3.inlet.state.p,sink3.inlet.state.phase,sink3.p,sink3.p0,sink3.p0_par,sink3.r,sink4.L,sink4.inlet.m_flow,sink4.inlet.r,sink4.inlet.state.T,sink4.inlet.state.d,sink4.inlet.state.h,sink4.inlet.state.p,sink4.inlet.state.phase,sink4.p,sink4.p0,sink4.p0_par,sink4.r,source.L,source.T0,source.T0_par,source.h0,source.h0_par,source.outlet.m_flow,source.outlet.r,source.outlet.state.T,source.outlet.state.d,source.outlet.state.h,source.outlet.state.p,source.outlet.state.phase,source.p0,source.p0_par,source1.L,source1.T0,source1.T0_par,source1.h0,source1.h0_par,source1.outlet.m_flow,source1.outlet.r,source1.outlet.state.T,source1.outlet.state.d,source1.outlet.state.h,source1.outlet.state.p,source1.outlet.state.phase,source1.p0,source1.p0_par,source2.L,source2.T0,source2.T0_par,source2.h0,source2.h0_par,source2.outlet.m_flow,source2.outlet.r,source2.outlet.state.T,source2.outlet.state.d,source2.outlet.state.h,source2.outlet.state.p,source2.outlet.state.phase,source2.p0,source2.p0_par,source3.L,source3.T0,source3.T0_par,source3.h0,source3.h0_par,source3.outlet.m_flow,source3.outlet.r,source3.outlet.state.T,source3.outlet.state.d,source3.outlet.state.h,source3.outlet.state.p,source3.outlet.state.phase,source3.p0,source3.p0_par,splitterT2_1.L,splitterT2_1.inlet.m_flow,splitterT2_1.inlet.r,splitterT2_1.inlet.state.T,splitterT2_1.inlet.state.d,splitterT2_1.inlet.state.h,splitterT2_1.inlet.state.p,splitterT2_1.inlet.state.phase,splitterT2_1.outletA.m_flow,splitterT2_1.outletA.r,splitterT2_1.outletA.state.T,splitterT2_1.outletA.state.d,splitterT2_1.outletA.state.h,splitterT2_1.outletA.state.p,splitterT2_1.outletA.state.phase,splitterT2_1.outletB.m_flow,splitterT2_1.outletB.r,splitterT2_1.outletB.state.T,splitterT2_1.outletB.state.d,splitterT2_1.outletB.state.h,splitterT2_1.outletB.state.p,splitterT2_1.outletB.state.phase,splitterT2_1.splitterN.L,splitterT2_1.splitterN.N,splitterT2_1.splitterN.inlet.m_flow,splitterT2_1.splitterN.inlet.r,splitterT2_1.splitterN.inlet.state.T,splitterT2_1.splitterN.inlet.state.d,splitterT2_1.splitterN.inlet.state.h,splitterT2_1.splitterN.inlet.state.p,splitterT2_1.splitterN.inlet.state.phase,splitterT2_1.splitterN.outlets[1].m_flow,splitterT2_1.splitterN.outlets[1].r,splitterT2_1.splitterN.outlets[1].state.T,splitterT2_1.splitterN.outlets[1].state.d,splitterT2_1.splitterN.outlets[1].state.h,splitterT2_1.splitterN.outlets[1].state.p,splitterT2_1.splitterN.outlets[1].state.phase,splitterT2_1.splitterN.outlets[2].m_flow,splitterT2_1.splitterN.outlets[2].r,splitterT2_1.splitterN.outlets[2].state.T,splitterT2_1.splitterN.outlets[2].state.d,splitterT2_1.splitterN.outlets[2].state.h,splitterT2_1.splitterN.outlets[2].state.p,splitterT2_1.splitterN.outlets[2].state.phase,splitterT2_1.splitterN.r_mix,time,volume.A,volume.L,volume.M,volume.Q_flow,volume.T_heatPort,volume.T_start,volume.U,volume.U_med,volume.V,volume.V_par,volume.W_v,volume.d,volume.density_derp_h,volume.density_derp_h_set,volume.h_in,volume.h_out,volume.h_start,volume.k_volume_damping,volume.m_flow_assert,volume.m_flow_in,volume.m_flow_out,volume.medium.MM,volume.medium.R_s,volume.medium.T,volume.medium.T_degC,volume.medium.X[1],volume.medium.d,volume.medium.h,volume.medium.p,volume.medium.p_bar,volume.medium.phase,volume.medium.preferredMediumStates,volume.medium.quality,volume.medium.sat.Tsat,volume.medium.sat.psat,volume.medium.standardOrderComponents,volume.medium.state.T,volume.medium.state.d,volume.medium.state.h,volume.medium.state.p,volume.medium.state.phase,volume.medium.u,volume.outlet.m_flow,volume.outlet.r,volume.outlet.state.T,volume.outlet.state.d,volume.outlet.state.h,volume.outlet.state.p,volume.outlet.state.phase,volume.p_in,volume.p_start,volume.r,volume.r_damping,volume.r_in,volume.r_out,volume.state_in.T,volume.state_in.d,volume.state_in.h,volume.state_in.p,volume.state_in.phase,volume.state_out.T,volume.state_out.d,volume.state_out.h,volume.state_out.p,volume.state_out.phase,volumeFlex.A,volumeFlex.K,volumeFlex.L,volumeFlex.M,volumeFlex.Q_flow,volumeFlex.T_heatPort,volumeFlex.T_start,volumeFlex.U,volumeFlex.U_med,volumeFlex.V,volumeFlex.V_ref,volumeFlex.W_v,volumeFlex.d,volumeFlex.density_derp_h,volumeFlex.h_in,volumeFlex.h_out,volumeFlex.h_start,volumeFlex.inlet.m_flow,volumeFlex.inlet.r,volumeFlex.inlet.state.T,volumeFlex.inlet.state.d,volumeFlex.inlet.state.h,volumeFlex.inlet.state.p,volumeFlex.inlet.state.phase,volumeFlex.k_volume_damping,volumeFlex.m_flow_assert,volumeFlex.m_flow_in,volumeFlex.m_flow_out,volumeFlex.medium.MM,volumeFlex.medium.R_s,volumeFlex.medium.T,volumeFlex.medium.T_degC,volumeFlex.medium.X[1],volumeFlex.medium.d,volumeFlex.medium.h,volumeFlex.medium.p,volumeFlex.medium.p_bar,volumeFlex.medium.phase,volumeFlex.medium.preferredMediumStates,volumeFlex.medium.quality,volumeFlex.medium.sat.Tsat,volumeFlex.medium.sat.psat,volumeFlex.medium.standardOrderComponents,volumeFlex.medium.state.T,volumeFlex.medium.state.d,volumeFlex.medium.state.h,volumeFlex.medium.state.p,volumeFlex.medium.state.phase,volumeFlex.medium.u,volumeFlex.outlet.m_flow,volumeFlex.outlet.r,volumeFlex.outlet.state.T,volumeFlex.outlet.state.d,volumeFlex.outlet.state.h,volumeFlex.outlet.state.p,volumeFlex.outlet.state.phase,volumeFlex.p_in,volumeFlex.p_ref,volumeFlex.p_start,volumeFlex.r,volumeFlex.r_damping,volumeFlex.r_in,volumeFlex.r_out,volumeFlex.state_in.T,volumeFlex.state_in.d,volumeFlex.state_in.h,volumeFlex.state_in.p,volumeFlex.state_in.phase,volumeFlex.state_out.T,volumeFlex.state_out.d,volumeFlex.state_out.h,volumeFlex.state_out.p,volumeFlex.state_out.phase filterSimulationResults("ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia_res.mat", "/var/lib/jenkins/ws/OpenModelicaLibraryTestingWork/OpenModelicaLibraryTesting/files/ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.diff.mat", vars={"receiver.r_in", "receiver.r", "receiver.medium.der(u)", "receiver.medium.der(p)", "receiver.medium.der(h)", "receiver.m_flow_in", "flowResistance8.outlet.r", "discretizedHEX4.thermalElementB[2].der(h)", "discretizedHEX4.thermalElementB[1].der(h)", "discretizedHEX2.thermalElementB[3].k", "discretizedHEX2.thermalElementB[3].inlet.r", "discretizedHEX2.thermalElementB[3].der(h)", "discretizedHEX2.thermalElementB[3].U_vap", "discretizedHEX2.thermalElementB[3].U_liq", "discretizedHEX2.thermalElementB[3].U", "discretizedHEX2.thermalElementB[2].k", "discretizedHEX2.thermalElementB[2].inlet.r", "discretizedHEX2.thermalElementB[2].U_vap", "discretizedHEX2.thermalElementB[2].U_liq", "discretizedHEX2.thermalElementB[2].U", "discretizedHEX2.thermalElementB[1].k", "discretizedHEX2.thermalElementB[1].inlet.r", "discretizedHEX2.thermalElementB[1].U_vap", "discretizedHEX2.thermalElementB[1].U_liq", "discretizedHEX2.thermalElementB[1].U", "discretizedHEX1.thermalElementB[2].heatPort.Q_flow", "discretizedHEX1.thermalElementB[1].heatPort.Q_flow", "discretizedHEX1.thermalElementB[1].der(h)", "discretizedHEX1.thermalElementA[1].der(h)", "discretizedHEX1.thermalConductor[2].dT", "discretizedHEX1.thermalConductor[1].dT", "discretizedHEX.thermalElementB[3].heatPort.Q_flow", "discretizedHEX.thermalElementB[3].der(h)", "discretizedHEX.thermalElementB[2].heatPort.Q_flow", "discretizedHEX.thermalElementB[2].der(h)", "discretizedHEX.thermalElementB[1].der(h)", "discretizedHEX.thermalElementA[3].der(h)", "discretizedHEX.thermalElementA[2].der(h)", "discretizedHEX.thermalElementA[1].der(h)", "discretizedHEX.thermalConductor[3].dT", "discretizedHEX.thermalConductor[2].dT", "counterFlowNTU.summary.dh_A", "counterFlowNTU.summary.dT_A", "counterFlowNTU.C_r", "counterFlowNTU.C_max", "counterFlowNTU.C_B", "conductionElement.der(h)"}, removeDescription=false) [Timeout 660] "" [Timeout remaining time 660] filterSimulationResults("/mnt/ReferenceFiles/ThermofluidStream-main-regression/ReferenceData/ThermofluidStream.Media.Tests.TestXRGMedia_ref.mat", "/var/lib/jenkins/ws/OpenModelicaLibraryTestingWork/OpenModelicaLibraryTesting/files/ThermofluidStream_dev_ThermofluidStream.Media.Tests.TestXRGMedia.diff.ref.mat", vars={"receiver.r_in", "receiver.r", "receiver.medium.der(u)", "receiver.medium.der(p)", "receiver.medium.der(h)", "receiver.m_flow_in", "flowResistance8.outlet.r", "discretizedHEX4.thermalElementB[2].der(h)", "discretizedHEX4.thermalElementB[1].der(h)", "discretizedHEX2.thermalElementB[3].k", "discretizedHEX2.thermalElementB[3].inlet.r", "discretizedHEX2.thermalElementB[3].der(h)", "discretizedHEX2.thermalElementB[3].U_vap", "discretizedHEX2.thermalElementB[3].U_liq", "discretizedHEX2.thermalElementB[3].U", "discretizedHEX2.thermalElementB[2].k", "discretizedHEX2.thermalElementB[2].inlet.r", "discretizedHEX2.thermalElementB[2].U_vap", "discretizedHEX2.thermalElementB[2].U_liq", "discretizedHEX2.thermalElementB[2].U", "discretizedHEX2.thermalElementB[1].k", "discretizedHEX2.thermalElementB[1].inlet.r", "discretizedHEX2.thermalElementB[1].U_vap", "discretizedHEX2.thermalElementB[1].U_liq", "discretizedHEX2.thermalElementB[1].U", "discretizedHEX1.thermalElementB[2].heatPort.Q_flow", "discretizedHEX1.thermalElementB[1].heatPort.Q_flow", "discretizedHEX1.thermalElementB[1].der(h)", "discretizedHEX1.thermalElementA[1].der(h)", "discretizedHEX1.thermalConductor[2].dT", "discretizedHEX1.thermalConductor[1].dT", "discretizedHEX.thermalElementB[3].heatPort.Q_flow", "discretizedHEX.thermalElementB[3].der(h)", "discretizedHEX.thermalElementB[2].heatPort.Q_flow", "discretizedHEX.thermalElementB[2].der(h)", "discretizedHEX.thermalElementB[1].der(h)", "discretizedHEX.thermalElementA[3].der(h)", "discretizedHEX.thermalElementA[2].der(h)", "discretizedHEX.thermalElementA[1].der(h)", "discretizedHEX.thermalConductor[3].dT", "discretizedHEX.thermalConductor[2].dT", "counterFlowNTU.summary.dh_A", "counterFlowNTU.summary.dT_A", "counterFlowNTU.C_r", "counterFlowNTU.C_max", "counterFlowNTU.C_B", "conductionElement.der(h)"}, removeDescription=false) [Timeout 660] "" [Timeout remaining time 660] [Calling sys.exit(0), Time elapsed: 28.362162514124066]