#include "readGravitationalAcceleration.H" Info<< "Creating reaction model\n" << endl; combustionModels::psiCombustionModel* pRxnCMC = (combustionModels::psiCombustionModel::New(mesh)).ptr(); autoPtr reaction ( dynamic_cast (pRxnCMC) ); autoPtr chemistry = reaction->chem(); psiReactionThermo& thermo = chemistry->thermo(); thermo.validate(args.executable(), "h", "e"); SLGThermo slgThermo(mesh, thermo); basicMultiComponentMixture& composition = thermo.composition(); PtrList& Y = composition.Y(); word inertSpecie(thermo.lookup("inertSpecie")); if (!composition.contains(inertSpecie)) { FatalErrorInFunction << "Specified inert specie '" << inertSpecie << "' not found in " << "species list. Available species:" << composition.species() << exit(FatalError); } volScalarField rho ( IOobject ( "rho", runTime.timeName(), mesh ), thermo.rho() ); Info<< "Reading field U\n" << endl; volVectorField U ( IOobject ( "U", runTime.timeName(), mesh, IOobject::MUST_READ, IOobject::AUTO_WRITE ), mesh ); volScalarField& p = thermo.p(); #include "compressibleCreatePhi.H" dimensionedScalar rhoMax ( dimensionedScalar::lookupOrDefault ( "rhoMax", piso.dict(), dimDensity, GREAT ) ); dimensionedScalar rhoMin ( dimensionedScalar::lookupOrDefault ( "rhoMin", piso.dict(), dimDensity, 0 ) ); mesh.setFluxRequired(p.name()); Info << "Creating turbulence model.\n" << nl; autoPtr turbulence ( compressible::turbulenceModel::New ( rho, U, phi, thermo ) ); // Set the turbulence into the reaction model reaction->setTurbulence(turbulence()); Info<< "Creating field dpdt\n" << endl; volScalarField dpdt ( IOobject ( "dpdt", runTime.timeName(), mesh ), mesh, dimensionedScalar("dpdt", p.dimensions()/dimTime, 0) ); Info<< "Creating field kinetic energy K\n" << endl; volScalarField K("K", 0.5*magSqr(U)); multivariateSurfaceInterpolationScheme::fieldTable fields; forAll(Y, i) { fields.add(Y[i]); } fields.add(thermo.he()); volScalarField dQ ( IOobject ( "dQ", runTime.timeName(), mesh, IOobject::NO_READ, IOobject::AUTO_WRITE ), mesh, dimensionedScalar("dQ", dimEnergy/dimTime, 0.0) ); tmp > mvConvection ( fv::convectionScheme::New ( mesh, fields, phi, mesh.divScheme("div(phi,Yi_h)") ) ); #include "createMRF.H" #include "createClouds.H" #include "createRadiationModel.H"