if(mesh.moving()) { // Make the fluxes relative phi -= fvc::meshPhi(U); } # include "CourantNo.H" fvVectorMatrix UEqn ( fvm::ddt(U) + fvm::div(phi, U) - fvm::laplacian(nu, U) ); solve(UEqn == -fvc::grad(p)); // --- PISO loop volScalarField rUA = 1.0/UEqn.A(); while (piso.correct()) { U = rUA*UEqn.H(); phi = (fvc::interpolate(U) & mesh.Sf()); adjustPhi(phi, U, p); while (piso.correctNonOrthogonal()) { fvScalarMatrix pEqn ( fvm::laplacian(rUA, p) == fvc::div(phi) ); pEqn.setReference(pRefCell, pRefValue); pEqn.solve(); if (piso.finalNonOrthogonalIter()) { phi -= pEqn.flux(); } } # include "continuityErrs.H" U -= rUA*fvc::grad(p); U.correctBoundaryConditions(); }