123 const MaterialLawParams& matParams,
124 bool isInEquilibrium =
false)
128 for (
unsigned phaseIdx = 1; phaseIdx < numPhases; ++phaseIdx) {
129 assert(std::abs(fluidState.temperature(0) - fluidState.temperature(phaseIdx)) < 1e-30);
135 if (isInEquilibrium) {
142 typename FluidSystem::template ParameterCache<Scalar> paramCache;
143 Opm::ImmiscibleFluidState<Scalar, FluidSystem> fsFlash;
147 fsFlash.assign(fluidState);
150 paramCache.updateAll(fsFlash);
151 for (
unsigned phaseIdx = 0; phaseIdx < numPhases; ++phaseIdx) {
152 Scalar rho = FluidSystem::density(fsFlash, paramCache, phaseIdx);
153 fsFlash.setDensity(phaseIdx, rho);
157 ComponentVector globalMolarities(0.0);
158 for (
unsigned compIdx = 0; compIdx < numComponents; ++compIdx) {
159 for (
unsigned phaseIdx = 0; phaseIdx < numPhases; ++phaseIdx) {
160 globalMolarities[compIdx] +=
161 fsFlash.saturation(phaseIdx) * fsFlash.molarity(phaseIdx, compIdx);
166 ImmiscibleFlash::template solve<MaterialLaw>(fsFlash, matParams, paramCache, globalMolarities);
193 EnergyModule::setPriVarTemperatures(asImp_(), fluidState);
195 (*this)[pressure0Idx] = fluidState.pressure(0);
196 for (
unsigned phaseIdx = 0; phaseIdx < numPhases - 1; ++phaseIdx)
197 (*
this)[saturation0Idx + phaseIdx] = fluidState.saturation(phaseIdx);