229 lines
6.8 KiB
C++
229 lines
6.8 KiB
C++
/*---------------------------------------------------------------------------*\
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========= |
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\\ / F ield | OpenFOAM: The Open Source CFD Toolbox
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\\ / O peration | Website: https://openfoam.org
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\\ / A nd | Copyright (C) 2017-2024 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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Application
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setWaves
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Description
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Applies wave models to the entire domain for case initialisation using
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level sets for second-order accuracy.
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\*---------------------------------------------------------------------------*/
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#include "argList.H"
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#include "levelSet.H"
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#include "pointFields.H"
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#include "timeSelector.H"
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#include "uniformDimensionedFields.H"
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#include "volFields.H"
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#include "wallPolyPatch.H"
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#include "waveAlphaFvPatchScalarField.H"
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#include "waveVelocityFvPatchVectorField.H"
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#include "systemDict.H"
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using namespace Foam;
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// * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
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int main(int argc, char *argv[])
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{
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timeSelector::addOptions(false, false);
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#include "addDictOption.H"
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#include "addRegionOption.H"
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argList::addOption
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(
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"alpha",
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"name",
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"name of the volume fraction field, default is \"alpha\""
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);
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argList::addOption
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(
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"U",
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"name",
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"name of the velocity field, default is \"U\""
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);
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argList::addBoolOption
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(
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"gas",
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"the volume fraction field is that of the gas above the wave"
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);
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#include "setRootCase.H"
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#include "createTime.H"
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const instantList timeDirs = timeSelector::selectIfPresent(runTime, args);
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#include "createRegionMeshNoChangers.H"
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const dictionary setWavesDict(systemDict("setWavesDict", args, mesh));
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#include "readGravitationalAcceleration.H"
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const pointMesh& pMesh = pointMesh::New(mesh);
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// Parse options
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const word alphaName = setWavesDict.lookupOrDefault<word>("alpha", "alpha");
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const word UName = setWavesDict.lookupOrDefault<word>("U", "U");
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const bool liquid = setWavesDict.lookupOrDefault<bool>("liquid", true);
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// Get the wave models
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const waveSuperposition& waves = waveSuperposition::New(mesh);
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forAll(timeDirs, timeI)
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{
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runTime.setTime(timeDirs[timeI], timeI);
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const scalar t = runTime.value();
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Info<< "Time = " << runTime.userTimeName() << nl << endl;
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mesh.readUpdate();
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// Read the fields which are to be set
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volScalarField alpha
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(
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IOobject
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(
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alphaName,
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runTime.name(),
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mesh,
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IOobject::MUST_READ
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),
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mesh
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);
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volVectorField U
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(
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IOobject
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(
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UName,
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runTime.name(),
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mesh,
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IOobject::MUST_READ
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),
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mesh
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);
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// Create modelled fields on both cells and points
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volScalarField h
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(
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IOobject("h", runTime.name(), mesh),
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mesh,
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dimensionedScalar(dimLength, 0)
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);
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pointScalarField hp
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(
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IOobject("hp", runTime.name(), mesh),
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pMesh,
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dimensionedScalar(dimLength, 0)
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);
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volVectorField uGas
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(
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IOobject("uGas", runTime.name(), mesh),
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mesh,
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dimensionedVector(dimVelocity, vector::zero)
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);
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pointVectorField uGasp
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(
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IOobject("uGasp", runTime.name(), mesh),
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pMesh,
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dimensionedVector(dimVelocity, vector::zero)
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);
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volVectorField uLiq
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(
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IOobject("uLiq", runTime.name(), mesh),
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mesh,
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dimensionedVector(dimVelocity, vector::zero)
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);
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pointVectorField uLiqp
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(
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IOobject("uLiqp", runTime.name(), mesh),
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pMesh,
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dimensionedVector(dimVelocity, vector::zero)
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);
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// Cell centres and points
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const pointField& ccs = mesh.cellCentres();
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const pointField& pts = mesh.points();
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// Internal field
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h.primitiveFieldRef() = waves.height(t, ccs);
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hp.primitiveFieldRef() = waves.height(t, pts);
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uGas.primitiveFieldRef() = waves.UGas(t, ccs);
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uGasp.primitiveFieldRef() = waves.UGas(t, pts);
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uLiq.primitiveFieldRef() = waves.ULiquid(t, ccs);
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uLiqp.primitiveFieldRef() = waves.ULiquid(t, pts);
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// Boundary fields
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forAll(mesh.boundary(), patchj)
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{
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const pointField& fcs = mesh.boundary()[patchj].Cf();
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h.boundaryFieldRef()[patchj] = waves.height(t, fcs);
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uGas.boundaryFieldRef()[patchj] = waves.UGas(t, fcs);
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uLiq.boundaryFieldRef()[patchj] = waves.ULiquid(t, fcs);
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}
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// Calculate the fields
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volScalarField alphaNoBCs(levelSetFraction(h, hp, !liquid));
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volVectorField UNoBCs(levelSetAverage(h, hp, uGas, uGasp, uLiq, uLiqp));
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// Set the wave and non-wall fixed-value patch fields
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forAll(mesh.boundary(), patchi)
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{
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const polyPatch& patch = mesh.boundaryMesh()[patchi];
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fvPatchScalarField& alphap = alpha.boundaryFieldRef()[patchi];
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fvPatchVectorField& Up = U.boundaryFieldRef()[patchi];
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if
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(
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!isA<wallPolyPatch>(patch)
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|| isA<waveAlphaFvPatchScalarField>(alphap)
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|| isA<waveVelocityFvPatchVectorField>(Up)
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)
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{
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alphap == alphaNoBCs.boundaryField()[patchi];
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Up == UNoBCs.boundaryField()[patchi];
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}
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}
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// Set the internal fields and all non-fixed value patch fields
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alpha = alphaNoBCs;
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U = UNoBCs;
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// Output
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Info<< "Writing " << alpha.name() << nl;
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alpha.write();
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Info<< "Writing " << U.name() << nl << endl;
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U.write();
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}
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Info<< "End\n" << endl;
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return 0;
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}
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// ************************************************************************* //
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