laplacianFoam.C
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23 
24 Application
25  laplacianFoam
26 
27 Description
28  Solves a simple Laplace equation, e.g. for thermal diffusion in a solid.
29 
30 \*---------------------------------------------------------------------------*/
31 
32 #include "fvCFD.H"
33 #include "fvOptions.H"
34 #include "simpleControl.H"
35 
36 // * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
37 
38 int main(int argc, char *argv[])
39 {
40  #include "setRootCase.H"
41 
42  #include "createTime.H"
43  #include "createMesh.H"
44 
45  simpleControl simple(mesh);
46 
47  #include "createFields.H"
48  #include "createFvOptions.H"
49 
50  // * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * //
51 
52  Info<< "\nCalculating temperature distribution\n" << endl;
53 
54  while (simple.loop())
55  {
56  Info<< "Time = " << runTime.timeName() << nl << endl;
57 
58  while (simple.correctNonOrthogonal())
59  {
61  (
62  fvm::ddt(T) - fvm::laplacian(DT, T)
63  ==
64  fvOptions(T)
65  );
66 
67  fvOptions.constrain(TEqn);
68  TEqn.solve();
69  fvOptions.correct(T);
70  }
71 
72  #include "write.H"
73 
74  Info<< "ExecutionTime = " << runTime.elapsedCpuTime() << " s"
75  << " ClockTime = " << runTime.elapsedClockTime() << " s"
76  << nl << endl;
77  }
78 
79  Info<< "End\n" << endl;
80 
81  return 0;
82 }
83 
84 
85 // ************************************************************************* //
fvMatrix< scalar > fvScalarMatrix
Definition: fvMatricesFwd.H:42
Ostream & endl(Ostream &os)
Add newline and flush stream.
Definition: Ostream.H:253
tmp< GeometricField< Type, fvPatchField, volMesh > > laplacian(const GeometricField< Type, fvPatchField, volMesh > &vf, const word &name)
Definition: fvcLaplacian.C:45
fv::options & fvOptions
tmp< GeometricField< Type, fvPatchField, volMesh > > ddt(const dimensioned< Type > dt, const fvMesh &mesh)
Definition: fvcDdt.C:45
dynamicFvMesh & mesh
static const char nl
Definition: Ostream.H:262
const volScalarField & T
const dictionary & simple
messageStream Info
fvScalarMatrix TEqn(fvm::ddt(T)+fvm::div(phi, T) - fvm::laplacian(alphaEff, T)==radiation->ST(rhoCpRef, T)+fvOptions(T))