71 lines
1.5 KiB
C
71 lines
1.5 KiB
C
{
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p.boundaryField().updateCoeffs();
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// Prepare clean Ap without time derivative contribution and
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// without contribution from under-relaxation
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// HJ, 26/Oct/2015
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aU = HUEqn.A();
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// Store velocity under-relaxation point before using U for
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// the flux precursor
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U.storePrevIter();
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U = HUEqn.H()/aU;
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phi = (fvc::interpolate(U) & mesh.Sf());
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// Global flux balance
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adjustPhi(phi, U, p);
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for (int nonOrth = 0; nonOrth <= nNonOrthCorr; nonOrth++)
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{
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fvScalarMatrix pEqn
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(
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fvm::laplacian(1/aU, p) == fvc::div(phi)
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);
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pEqn.setReference(pRefCell, pRefValue);
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if
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(
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// oCorr == nOuterCorr - 1
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corr == nCorr - 1
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&& nonOrth == nNonOrthCorr
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)
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{
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pEqn.solve
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(
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mesh.solutionDict().solver(p.name() + "Final")
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);
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}
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else
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{
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pEqn.solve(mesh.solutionDict().solver(p.name()));
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}
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if (nonOrth == nNonOrthCorr)
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{
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phi -= pEqn.flux();
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}
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}
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// Explicitly relax pressure for momentum corrector
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if (oCorr != nOuterCorr - 1)
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{
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p.relax();
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}
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// Make the fluxes relative to the mesh motion
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fvc::makeRelative(phi, U);
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# include "movingMeshContinuityErrs.H"
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U = UUrf*
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(
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1.0/(aU + ddtUEqn.A())*
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(
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U*aU - fvc::grad(p) + ddtUEqn.H()
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)
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)
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+ (1 - UUrf)*U.prevIter();
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U.correctBoundaryConditions();
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}
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