81 const SubControlVolume& scv,
82 const VolumeVariables& volVars)
const
84 CellCenterPrimaryVariables storage = ParentType::computeStorageForCellCenter(problem, scv, volVars);
86 storage[turbulentKineticEnergyEqIdx] = volVars.turbulentKineticEnergy();
87 storage[dissipationEqIdx] = volVars.dissipation();
93 const Element &element,
94 const FVElementGeometry& fvGeometry,
95 const ElementVolumeVariables& elemVolVars,
96 const ElementFaceVariables& elemFaceVars,
97 const SubControlVolume &scv)
const
99 CellCenterPrimaryVariables source = ParentType::computeSourceForCellCenter(problem, element, fvGeometry,
100 elemVolVars, elemFaceVars, scv);
103 const auto& volVars = elemVolVars[scv];
106 static const auto enableKOmegaProductionLimiter
108 Scalar productionTerm = 2.0 * volVars.kinematicEddyViscosity() * volVars.stressTensorScalarProduct();
109 if (enableKOmegaProductionLimiter)
111 Scalar productionAlternative = 20.0 * volVars.betaK() * volVars.turbulentKineticEnergy() * volVars.dissipation();
112 productionTerm = min(productionTerm, productionAlternative);
114 source[turbulentKineticEnergyEqIdx] += productionTerm;
115 source[dissipationEqIdx] += volVars.alpha() * volVars.dissipation() / volVars.turbulentKineticEnergy() * productionTerm;
118 source[turbulentKineticEnergyEqIdx] -= volVars.betaK() * volVars.turbulentKineticEnergy() * volVars.dissipation();
119 source[dissipationEqIdx] -= volVars.betaOmega() * volVars.dissipation() * volVars.dissipation();
122 Scalar gradientProduct = 0.0;
123 for (
unsigned int i = 0; i < ModelTraits::dim(); ++i)
124 gradientProduct += volVars.storedTurbulentKineticEnergyGradient()[i]
125 * volVars.storedDissipationGradient()[i];
126 if (gradientProduct > 0.0)
127 source[dissipationEqIdx] += 0.125 / volVars.dissipation() * gradientProduct;