Commit 84e29be4 authored by Thomas Fetzer's avatar Thomas Fetzer
Browse files

[freeflow]

updated vtk output:
1) same names as in pm
2) always give mole and mass frac in output

reviewed by nicolas


git-svn-id: svn://svn.iws.uni-stuttgart.de/DUMUX/dumux/trunk@15042 2fb0f335-1f38-0410-981e-8018bf24f1b0
parent 5e7f18e7
......@@ -182,29 +182,19 @@ public:
writer.attachVertexData(T, "temperature");
writer.attachVertexData(pN, "P");
writer.attachVertexData(delP, "delP");
if(useMoles)
{
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream oss;
oss << "x"
<< FluidSystem::componentName(j)
<< FluidSystem::phaseName(phaseIdx);
writer.attachVertexData(*moleFraction[j], oss.str().c_str());
}
} else {
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream oss;
oss << "X"
<< FluidSystem::componentName(j)
<< FluidSystem::phaseName(phaseIdx);
writer.attachVertexData(*massFraction[j], oss.str().c_str());
}
}
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream moleFrac, massFrac;
moleFrac << "x_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*moleFraction[j], moleFrac.str().c_str());
massFrac << "X_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*massFraction[j], massFrac.str().c_str());
}
writer.attachVertexData(rho, "rho");
writer.attachVertexData(mu, "mu");
writer.attachVertexData(velocity, "v", dim);
......
......@@ -189,29 +189,19 @@ public:
writer.attachVertexData(T, "temperature");
writer.attachVertexData(pn, "pg");
writer.attachVertexData(delP, "delP");
if(useMoles)
{
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream oss;
oss << "x"
<< FluidSystem::componentName(j)
<< "g";
writer.attachVertexData(*moleFraction[j], oss.str().c_str());
}
} else {
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream oss;
oss << "X"
<< FluidSystem::componentName(j)
<< "g";
writer.attachVertexData(*massFraction[j], oss.str().c_str());
}
}
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream moleFrac, massFrac;
moleFrac << "x_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*moleFraction[j], moleFrac.str().c_str());
massFrac << "X_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*massFraction[j], massFrac.str().c_str());
}
writer.attachVertexData(h, "h");
writer.attachVertexData(rho, "rho");
writer.attachVertexData(mu, "mu");
......
......@@ -90,7 +90,8 @@ class ZeroEqncModel : public ZeroEqModel<TypeTag>
width = Indices::scvDataWidth // width of column
};
enum { numEq = GET_PROP_VALUE(TypeTag, NumEq) };
enum { transportCompIdx = Indices::transportCompIdx };
enum { transportCompIdx = Indices::transportCompIdx,
numComponents = Indices::numComponents };
enum { phaseIdx = GET_PROP_VALUE(TypeTag, PhaseIdx) };
typedef typename GridView::template Codim<0>::Iterator ElementIterator;
......@@ -144,7 +145,14 @@ public:
unsigned numVertices = this->gridView_().size(dim);
ScalarField &pN = *writer.allocateManagedBuffer(numVertices);
ScalarField &delP = *writer.allocateManagedBuffer(numVertices);
ScalarField &Xw = *writer.allocateManagedBuffer(numVertices);
ScalarField *moleFraction[numComponents];
for (int i = 0; i < numComponents; ++i)
moleFraction[i] = writer.template allocateManagedBuffer<Scalar, 1>(numVertices);
ScalarField *massFraction[numComponents];
for (int i = 0; i < numComponents; ++i)
massFraction[i] = writer.template allocateManagedBuffer<Scalar, 1>(numVertices);
ScalarField &rho = *writer.allocateManagedBuffer(numVertices);
ScalarField &mu = *writer.allocateManagedBuffer(numVertices);
VelocityField &velocity = *writer.template allocateManagedBuffer<Scalar, dim> (numVertices);
......@@ -180,7 +188,13 @@ public:
pN[vIdxGlobal] = volVars.pressure()*scale_;
delP[vIdxGlobal] = volVars.pressure()*scale_ - 1e5;
Xw[vIdxGlobal] = volVars.fluidState().massFraction(phaseIdx, transportCompIdx);
for (int compIdx = 0; compIdx < numComponents; ++compIdx)
{
(*moleFraction[compIdx])[vIdxGlobal]= volVars.moleFraction(compIdx);
(*massFraction[compIdx])[vIdxGlobal]= volVars.massFraction(compIdx);
Valgrind::CheckDefined((*moleFraction[compIdx])[vIdxGlobal]);
Valgrind::CheckDefined((*massFraction[compIdx])[vIdxGlobal]);
}
rho[vIdxGlobal] = volVars.density()*scale_*scale_*scale_;
mu[vIdxGlobal] = volVars.dynamicViscosity()*scale_;
velocity[vIdxGlobal] = volVars.velocity();
......@@ -189,9 +203,19 @@ public:
}
writer.attachVertexData(pN, "P");
writer.attachVertexData(delP, "delP");
std::ostringstream outputNameX;
outputNameX << "X^" << FluidSystem::componentName(transportCompIdx);
writer.attachVertexData(Xw, outputNameX.str());
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream moleFrac, massFrac;
moleFrac << "x_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*moleFraction[j], moleFrac.str().c_str());
massFrac << "X_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*massFraction[j], massFrac.str().c_str());
}
writer.attachVertexData(rho, "rho");
writer.attachVertexData(mu, "mu");
writer.attachVertexData(velocity, "v", dim);
......
......@@ -101,7 +101,8 @@ class ZeroEqncniModel : public ZeroEqncModel<TypeTag>
width = Indices::scvDataWidth // width of column
};
enum { numEq = GET_PROP_VALUE(TypeTag, NumEq) };
enum { transportCompIdx = Indices::transportCompIdx };
enum { transportCompIdx = Indices::transportCompIdx,
numComponents = Indices::numComponents };
enum { phaseIdx = GET_PROP_VALUE(TypeTag, PhaseIdx) };
typedef typename GridView::template Codim<0>::Iterator ElementIterator;
......@@ -155,7 +156,14 @@ public:
unsigned numVertices = this->gridView_().size(dim);
ScalarField &pN = *writer.allocateManagedBuffer(numVertices);
ScalarField &delP = *writer.allocateManagedBuffer(numVertices);
ScalarField &Xw = *writer.allocateManagedBuffer(numVertices);
ScalarField *moleFraction[numComponents];
for (int i = 0; i < numComponents; ++i)
moleFraction[i] = writer.template allocateManagedBuffer<Scalar, 1>(numVertices);
ScalarField *massFraction[numComponents];
for (int i = 0; i < numComponents; ++i)
massFraction[i] = writer.template allocateManagedBuffer<Scalar, 1>(numVertices);
ScalarField &rho = *writer.allocateManagedBuffer(numVertices);
ScalarField &mu = *writer.allocateManagedBuffer(numVertices);
VelocityField &velocity = *writer.template allocateManagedBuffer<Scalar, dim> (numVertices);
......@@ -192,7 +200,13 @@ public:
pN[vIdxGlobal] = volVars.pressure()*scale_;
delP[vIdxGlobal] = volVars.pressure()*scale_ - 1e5;
Xw[vIdxGlobal] = volVars.fluidState().massFraction(phaseIdx, transportCompIdx);
for (int compIdx = 0; compIdx < numComponents; ++compIdx)
{
(*moleFraction[compIdx])[vIdxGlobal]= volVars.moleFraction(compIdx);
(*massFraction[compIdx])[vIdxGlobal]= volVars.massFraction(compIdx);
Valgrind::CheckDefined((*moleFraction[compIdx])[vIdxGlobal]);
Valgrind::CheckDefined((*massFraction[compIdx])[vIdxGlobal]);
}
rho[vIdxGlobal] = volVars.density()*scale_*scale_*scale_;
mu[vIdxGlobal] = volVars.dynamicViscosity()*scale_;
velocity[vIdxGlobal] = volVars.velocity();
......@@ -202,9 +216,19 @@ public:
}
writer.attachVertexData(pN, "P");
writer.attachVertexData(delP, "delP");
std::ostringstream outputNameX;
outputNameX << "X^" << FluidSystem::componentName(transportCompIdx);
writer.attachVertexData(Xw, outputNameX.str());
for (int j = 0; j < numComponents; ++j)
{
std::ostringstream moleFrac, massFrac;
moleFrac << "x_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*moleFraction[j], moleFrac.str().c_str());
massFrac << "X_" << FluidSystem::phaseName(phaseIdx)
<< "^" << FluidSystem::componentName(j);
writer.attachVertexData(*massFraction[j], massFrac.str().c_str());
}
writer.attachVertexData(rho, "rho");
writer.attachVertexData(mu, "mu");
writer.attachVertexData(velocity, "v", dim);
......
......@@ -45,7 +45,21 @@
0.000945974 0.00081076 0.000675676 0.000540494 0.000405404 0.000270244 0.000135146 0 0.00202823 0.00189271 0.00175771 0.00162221
0.00148702 0.00135163 0.00121649 0.00108119 0.000946081 0.000810847 0.000675746 0.00054055 0.000405444 0.000270272 0.000135149 0
</DataArray>
<DataArray type="Float32" Name="XH2Og" NumberOfComponents="1" format="ascii">
<DataArray type="Float32" Name="x_gas^H2O" NumberOfComponents="1" format="ascii">
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0.0128049 0.0128061 0.012807 0.0128078 0.0128084 0.0128089 0.0128093 0.0128096 0.0128098 0.01281 0.01281 0.0127981
</DataArray>
<DataArray type="Float32" Name="X_gas^H2O" NumberOfComponents="1" format="ascii">
0.0190173 0.0190142 0.008 0.00800807 0.0190108 0.00801612 0.0190085 0.00802415 0.0190071 0.00803216 0.0190065 0.00804016
0.0190066 0.00804814 0.0190071 0.00805612 0.019008 0.00806408 0.0190091 0.00807204 0.0190103 0.00807999 0.0190115 0.00808795
0.0190127 0.00809593 0.0190139 0.00810391 0.0190152 0.00811189 0.0190213 0.00811588 0.008 0.008 0.00800001 0.00800002
......@@ -59,7 +73,21 @@
0.008 0.00800001 0.00800001 0.00800001 0.00800001 0.00800001 0.00800001 0.00800001 0.008 0.0080011 0.00800234 0.00800342
0.0080043 0.00800503 0.00800561 0.00800609 0.00800648 0.0080068 0.00800705 0.00800725 0.00800739 0.00800748 0.00800751 0.008
</DataArray>
<DataArray type="Float32" Name="XAirg" NumberOfComponents="1" format="ascii">
<DataArray type="Float32" Name="x_gas^Air" NumberOfComponents="1" format="ascii">
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0.987202 0.987202 0.987202 0.987202 0.987202 0.987202 0.987202 0.987202 0.987202 0.9872 0.987198 0.987197
0.987195 0.987194 0.987193 0.987192 0.987192 0.987191 0.987191 0.98719 0.98719 0.98719 0.98719 0.987202
</DataArray>
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0.980987 0.991904 0.980986 0.991896 0.980985 0.991888 0.980979 0.991884 0.992 0.992 0.992 0.992
......
......@@ -32,34 +32,62 @@
100000 100000 100000 100000 100000 100000 100000 100000 100000 100000 100000 100000
</DataArray>
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