87 const Element &element,
88 const FVElementGeometry& fvGeometry,
89 const ElementVolumeVariables& elemVolVars,
90 const ElementFaceVariables& elemFaceVars,
91 const SubControlVolumeFace &scvf,
92 const FluxVariablesCache& fluxVarsCache)
94 CellCenterPrimaryVariables flux = ParentType::computeMassFlux(problem, element, fvGeometry,
95 elemVolVars, elemFaceVars, scvf, fluxVarsCache);
98 auto upwindTermK = [](
const auto& volVars)
100 return volVars.turbulentKineticEnergy() * volVars.density();
102 auto upwindTermEpsilon = [](
const auto& volVars)
104 return volVars.dissipationTilde() * volVars.density();
107 flux[turbulentKineticEnergyEqIdx]
108 = ParentType::advectiveFluxForCellCenter(problem, elemVolVars, elemFaceVars, scvf, upwindTermK);
109 flux[dissipationEqIdx]
110 = ParentType::advectiveFluxForCellCenter(problem, elemVolVars, elemFaceVars, scvf, upwindTermEpsilon);
113 const auto& insideScv = fvGeometry.scv(scvf.insideScvIdx());
114 const auto& outsideScv = fvGeometry.scv(scvf.outsideScvIdx());
115 const auto& insideVolVars = elemVolVars[scvf.insideScvIdx()];
116 const auto& outsideVolVars = elemVolVars[scvf.outsideScvIdx()];
119 Scalar insideCoeff_k = insideVolVars.viscosity() + insideVolVars.kinematicEddyViscosity()
120 * insideVolVars.density() / insideVolVars.sigmaK();
121 Scalar outsideCoeff_k = outsideVolVars.viscosity() + outsideVolVars.kinematicEddyViscosity()
122 * outsideVolVars.density() / outsideVolVars.sigmaK();
123 Scalar insideCoeff_e = insideVolVars.viscosity() + insideVolVars.kinematicEddyViscosity()
124 * insideVolVars.density() / insideVolVars.sigmaEpsilon();
125 Scalar outsideCoeff_e = outsideVolVars.viscosity() + outsideVolVars.kinematicEddyViscosity()
126 * outsideVolVars.density() / outsideVolVars.sigmaEpsilon();
129 insideCoeff_k *= insideVolVars.extrusionFactor();
130 outsideCoeff_k *= outsideVolVars.extrusionFactor();
131 insideCoeff_e *= insideVolVars.extrusionFactor();
132 outsideCoeff_e *= outsideVolVars.extrusionFactor();
134 Scalar coeff_k = 0.0;
135 Scalar coeff_e = 0.0;
139 coeff_k = insideCoeff_k;
140 coeff_e = insideCoeff_e;
141 distance = (insideScv.dofPosition() - scvf.ipGlobal()).two_norm();
147 (outsideScv.dofPosition() - scvf.ipGlobal()).two_norm(),
148 (insideScv.dofPosition() - scvf.ipGlobal()).two_norm());
150 (outsideScv.dofPosition() - scvf.ipGlobal()).two_norm(),
151 (insideScv.dofPosition() - scvf.ipGlobal()).two_norm());
152 distance = (outsideScv.dofPosition() - insideScv.dofPosition()).two_norm();
155 const auto bcTypes = problem.boundaryTypes(element, scvf);
156 if (!(scvf.boundary() && (bcTypes.isOutflow(Indices::turbulentKineticEnergyEqIdx)
157 || bcTypes.isSymmetry())))
159 flux[turbulentKineticEnergyEqIdx]
161 * (insideVolVars.turbulentKineticEnergy() - outsideVolVars.turbulentKineticEnergy())
162 * Extrusion::area(scvf);
164 if (!(scvf.boundary() && (bcTypes.isOutflow(Indices::dissipationEqIdx)
165 || bcTypes.isSymmetry())))
167 flux[dissipationEqIdx]
169 * (insideVolVars.dissipationTilde() - outsideVolVars.dissipationTilde())
170 * Extrusion::area(scvf);
179 const Element& element,
180 const SubControlVolumeFace& scvf,
181 const FVElementGeometry& fvGeometry,
182 const ElementVolumeVariables& elemVolVars,
183 const ElementFaceVariables& elemFaceVars,
184 const GridFluxVariablesCache& gridFluxVarsCache)
186 const auto& insideVolVars = elemVolVars[scvf.insideScvIdx()];
188 return ParentType::computeFrontalMomentumFlux(problem, element, scvf, fvGeometry, elemVolVars, elemFaceVars, gridFluxVarsCache)
189 + ParentType::computeLateralMomentumFlux(problem, element, scvf, fvGeometry, elemVolVars, elemFaceVars, gridFluxVarsCache)
190 + 2.0 / ModelTraits::dim() * insideVolVars.density() * insideVolVars.turbulentKineticEnergy()
191 * Extrusion::area(scvf) * scvf.directionSign() * insideVolVars.extrusionFactor();