2022-06-20 02:04:17 -05:00
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// -*- mode: C++; tab-width: 4; indent-tabs-mode: nil; c-basic-offset: 4 -*-
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// vi: set et ts=4 sw=4 sts=4:
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/*
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This file is part of the Open Porous Media project (OPM).
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OPM is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 2 of the License, or
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(at your option) any later version.
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OPM is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with OPM. If not, see <http://www.gnu.org/licenses/>.
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Consult the COPYING file in the top-level source directory of this
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module for the precise wording of the license and the list of
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copyright holders.
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*/
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/*!
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* \file
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*
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* \brief This is test for the ChiFlash flash solver.
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*/
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#include "config.h"
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#include <opm/material/constraintsolvers/ChiFlash.hpp>
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#include <opm/material/fluidsystems/Co2BrineFluidSystem.hh>
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2022-06-20 02:04:17 -05:00
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#include <opm/material/densead/Evaluation.hpp>
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#include <opm/material/constraintsolvers/ComputeFromReferencePhase.hpp>
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#include <opm/material/fluidstates/CompositionalFluidState.hpp>
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#include <opm/material/fluidmatrixinteractions/LinearMaterial.hpp>
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#include <dune/common/parallel/mpihelper.hh>
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// the following include should be removed later
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// #include <opm/material/fluidsystems/chifluid/chiwoms.h>
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void testCo2BrineFlash()
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{
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using Scalar = double;
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using FluidSystem = Opm::Co2BrineFluidSystem<Scalar>;
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constexpr auto numComponents = FluidSystem::numComponents;
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using Evaluation = Opm::DenseAd::Evaluation<double, numComponents>;
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typedef Dune::FieldVector<Evaluation, numComponents> ComponentVector;
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typedef Opm::CompositionalFluidState<Evaluation, FluidSystem> FluidState;
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// input
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Evaluation p_init = Evaluation::createVariable(10e5, 0); // 10 bar
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ComponentVector comp;
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comp[0] = Evaluation::createVariable(0.5, 1);
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comp[1] = 1. - comp[0];//Evaluation::createVariable(0.1, 1);
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//comp[2] = 0;//1. - comp[0] - comp[1];
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ComponentVector sat;
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sat[0] = 1.0; sat[1] = 1.0-sat[0];
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// TODO: should we put the derivative against the temperature here?
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Scalar temp = 300.0;
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// From co2-compositional branch, it uses
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// typedef typename FluidSystem::template ParameterCache<Scalar> ParameterCache;
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FluidState fs;
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// TODO: no capillary pressure for now
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2022-06-20 02:04:17 -05:00
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fs.setPressure(FluidSystem::oilPhaseIdx, p_init);
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fs.setPressure(FluidSystem::gasPhaseIdx, p_init);
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fs.setMoleFraction(FluidSystem::oilPhaseIdx, FluidSystem::Comp0Idx, comp[0]);
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fs.setMoleFraction(FluidSystem::oilPhaseIdx, FluidSystem::Comp1Idx, comp[1]);
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//fs.setMoleFraction(FluidSystem::oilPhaseIdx, FluidSystem::Comp2Idx, comp[2]);
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fs.setMoleFraction(FluidSystem::gasPhaseIdx, FluidSystem::Comp0Idx, comp[0]);
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fs.setMoleFraction(FluidSystem::gasPhaseIdx, FluidSystem::Comp1Idx, comp[1]);
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//fs.setMoleFraction(FluidSystem::gasPhaseIdx, FluidSystem::Comp2Idx, comp[2]);
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// It is used here only for calculate the z
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fs.setSaturation(FluidSystem::oilPhaseIdx, sat[0]);
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fs.setSaturation(FluidSystem::gasPhaseIdx, sat[1]);
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fs.setTemperature(temp);
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// ParameterCache paramCache;
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{
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typename FluidSystem::template ParameterCache<Evaluation> paramCache;
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paramCache.updatePhase(fs, FluidSystem::oilPhaseIdx);
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paramCache.updatePhase(fs, FluidSystem::gasPhaseIdx);
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fs.setDensity(FluidSystem::oilPhaseIdx, FluidSystem::density(fs, paramCache, FluidSystem::oilPhaseIdx));
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fs.setDensity(FluidSystem::gasPhaseIdx, FluidSystem::density(fs, paramCache, FluidSystem::gasPhaseIdx));
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}
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ComponentVector zInit(0.); // TODO; zInit needs to be normalized.
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{
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Scalar sumMoles = 0.0;
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for (unsigned phaseIdx = 0; phaseIdx < FluidSystem::numPhases; ++phaseIdx) {
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for (unsigned compIdx = 0; compIdx < numComponents; ++compIdx) {
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Scalar tmp = Opm::getValue(fs.molarity(phaseIdx, compIdx) * fs.saturation(phaseIdx));
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zInit[compIdx] += Opm::max(tmp, 1e-8);
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sumMoles += tmp;
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}
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}
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zInit /= sumMoles;
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// initialize the derivatives
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// TODO: the derivative eventually should be from the reservoir flow equations
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Evaluation z_last = 1.;
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for (unsigned compIdx = 0; compIdx < numComponents - 1; ++compIdx) {
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zInit[compIdx] = Evaluation::createVariable(Opm::getValue(zInit[compIdx]), compIdx + 1);
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z_last -= zInit[compIdx];
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}
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zInit[numComponents - 1] = z_last;
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}
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// TODO: only, p, z need the derivatives.
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const double flash_tolerance = 1.e-12; // just to test the setup in co2-compositional
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const int flash_verbosity = 1;
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//const std::string flash_twophase_method = "ssi"; // "ssi"
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//const std::string flash_twophase_method = "newton";
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const std::string flash_twophase_method = "newton";
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// TODO: should we set these?
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// Set initial K and L
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for (unsigned compIdx = 0; compIdx < numComponents; ++compIdx) {
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const Evaluation Ktmp = fs.wilsonK_(compIdx);
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fs.setKvalue(compIdx, Ktmp);
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}
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const Evaluation Ltmp = 1.;
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fs.setLvalue(Ltmp);
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const int spatialIdx = 0;
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using Flash = Opm::ChiFlash<double, FluidSystem>;
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// TODO: here the zInit does not have the proper derivatives
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Flash::solve(fs, zInit, spatialIdx, flash_verbosity, flash_twophase_method, flash_tolerance);
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}
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int main(int argc, char **argv)
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{
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Dune::MPIHelper::instance(argc, argv);
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testCo2BrineFlash();
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return 0;
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}
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