205 lines
5.2 KiB
C
205 lines
5.2 KiB
C
/*---------------------------------------------------------------------------*\
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========= |
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\\ / F ield | OpenFOAM: The Open Source CFD Toolbox
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\\ / O peration |
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\\ / A nd | Copyright (C) 2011-2015 OpenFOAM Foundation
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\\/ M anipulation |
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-------------------------------------------------------------------------------
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License
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This file is part of OpenFOAM.
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OpenFOAM is free software: you can redistribute it and/or modify it
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under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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OpenFOAM is distributed in the hope that it will be useful, but WITHOUT
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ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
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for more details.
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You should have received a copy of the GNU General Public License
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along with OpenFOAM. If not, see <http://www.gnu.org/licenses/>.
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\*---------------------------------------------------------------------------*/
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#include "PDRkEpsilon.H"
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#include "PDRDragModel.H"
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#include "addToRunTimeSelectionTable.H"
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// * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
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namespace Foam
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{
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namespace compressible
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{
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namespace RASModels
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{
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// * * * * * * * * * * * * * * Static Data Members * * * * * * * * * * * * * //
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defineTypeNameAndDebug(PDRkEpsilon, 0);
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addToRunTimeSelectionTable(RASModel, PDRkEpsilon, dictionary);
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// * * * * * * * * * * * * * * * * Constructors * * * * * * * * * * * * * * //
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PDRkEpsilon::PDRkEpsilon
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(
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const geometricOneField& alpha,
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const volScalarField& rho,
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const volVectorField& U,
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const surfaceScalarField& alphaRhoPhi,
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const surfaceScalarField& phi,
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const fluidThermo& thermophysicalModel,
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const word& turbulenceModelName,
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const word& modelName
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)
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:
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Foam::RASModels::kEpsilon<EddyDiffusivity<compressible::turbulenceModel> >
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(
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geometricOneField(),
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rho,
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U,
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phi,
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phi,
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thermophysicalModel,
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turbulenceModelName,
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modelName
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),
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C4_
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(
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dimensioned<scalar>::lookupOrAddToDict
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(
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"C4",
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coeffDict_,
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0.1
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)
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)
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{}
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// * * * * * * * * * * * * * * * * * Destructor * * * * * * * * * * * * * * //
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PDRkEpsilon::~PDRkEpsilon()
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{}
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// * * * * * * * * * * * * * * * Member Functions * * * * * * * * * * * * * //
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bool PDRkEpsilon::read()
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{
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if (RASModel::read())
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{
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C4_.readIfPresent(coeffDict_);
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return true;
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}
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else
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{
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return false;
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}
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}
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void PDRkEpsilon::correct()
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{
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if (!turbulence_)
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{
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// Re-calculate viscosity
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nut_ = Cmu_*sqr(k_)/epsilon_;
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nut_.correctBoundaryConditions();
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// Re-calculate thermal diffusivity
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//***HGWalphat_ = mut_/Prt_;
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//alphat_.correctBoundaryConditions();
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return;
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}
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RASModel::correct();
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volScalarField divU(fvc::div(phi_/fvc::interpolate(rho_)));
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if (mesh_.moving())
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{
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divU += fvc::div(mesh_.phi());
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}
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tmp<volTensorField> tgradU = fvc::grad(U_);
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volScalarField G(GName(), rho_*nut_*(tgradU() && dev(twoSymm(tgradU()))));
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tgradU.clear();
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// Update espsilon and G at the wall
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epsilon_.boundaryField().updateCoeffs();
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// Add the blockage generation term so that it is included consistently
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// in both the k and epsilon equations
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const volScalarField& betav =
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U_.db().lookupObject<volScalarField>("betav");
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const volScalarField& Lobs =
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U_.db().lookupObject<volScalarField>("Lobs");
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const PDRDragModel& drag =
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U_.db().lookupObject<PDRDragModel>("PDRDragModel");
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volScalarField GR(drag.Gk());
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volScalarField LI
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(C4_*(Lobs + dimensionedScalar("minLength", dimLength, VSMALL)));
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// Dissipation equation
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tmp<fvScalarMatrix> epsEqn
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(
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betav*fvm::ddt(rho_, epsilon_)
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+ fvm::div(phi_, epsilon_)
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- fvm::laplacian(rho_*DepsilonEff(), epsilon_)
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==
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C1_*betav*G*epsilon_/k_
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+ 1.5*pow(Cmu_, 3.0/4.0)*GR*sqrt(k_)/LI
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- fvm::SuSp(((2.0/3.0)*C1_)*betav*rho_*divU, epsilon_)
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- fvm::Sp(C2_*betav*rho_*epsilon_/k_, epsilon_)
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);
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epsEqn().relax();
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epsEqn().boundaryManipulate(epsilon_.boundaryField());
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solve(epsEqn);
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bound(epsilon_, epsilonMin_);
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// Turbulent kinetic energy equation
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tmp<fvScalarMatrix> kEqn
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(
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betav*fvm::ddt(rho_, k_)
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+ fvm::div(phi_, k_)
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- fvm::laplacian(rho_*DkEff(), k_)
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==
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betav*G + GR
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- fvm::SuSp((2.0/3.0)*betav*rho_*divU, k_)
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- fvm::Sp(betav*rho_*epsilon_/k_, k_)
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);
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kEqn().relax();
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solve(kEqn);
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bound(k_, kMin_);
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// Re-calculate viscosity
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nut_ = Cmu_*sqr(k_)/epsilon_;
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nut_.correctBoundaryConditions();
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// Re-calculate thermal diffusivity
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//***HGWalphat_ = mut_/Prt_;
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//alphat_.correctBoundaryConditions();
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}
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// * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
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} // End namespace RASModels
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} // End namespace compressible
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} // End namespace Foam
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// ************************************************************************* //
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