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foam-extend4.1-coherent-io/applications/solvers/compressible/rhoPorousSimpleFoam/createFields.H

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Info<< "Reading thermophysical properties\n" << endl;
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autoPtr<basicPsiThermo> pThermo
(
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basicPsiThermo::New(mesh)
);
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basicPsiThermo& thermo = pThermo();
volScalarField rho
(
IOobject
(
"rho",
runTime.timeName(),
mesh,
IOobject::READ_IF_PRESENT,
IOobject::AUTO_WRITE
),
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thermo.rho()
);
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volScalarField& p = thermo.p();
volScalarField& h = thermo.h();
const volScalarField& psi = thermo.psi();
Info<< "Reading field U\n" << endl;
volVectorField U
(
IOobject
(
"U",
runTime.timeName(),
mesh,
IOobject::MUST_READ,
IOobject::AUTO_WRITE
),
mesh
);
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#include "compressibleCreatePhi.H"
label pRefCell = 0;
scalar pRefValue = 0.0;
setRefCell(p, simple.dict(), pRefCell, pRefValue);
mesh.schemesDict().setFluxRequired(p.name());
dimensionedScalar pMin(simple.dict().lookup("pMin"));
Info<< "Creating turbulence model\n" << endl;
autoPtr<compressible::RASModel> turbulence
(
compressible::RASModel::New
(
rho,
U,
phi,
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thermo
)
);
dimensionedScalar initialMass = fvc::domainIntegrate(rho);
porousZones pZones(mesh);
Switch pressureImplicitPorosity(false);
int nUCorr = 0;
if (pZones.size())
{
// nUCorrectors for pressureImplicitPorosity
if (simple.dict().found("nUCorrectors"))
{
nUCorr = readInt(simple.dict().lookup("nUCorrectors"));
}
if (nUCorr > 0)
{
pressureImplicitPorosity = true;
}
}