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https://github.com/OPM/opm-simulators.git
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Merge pull request #5978 from akva2/compositional_container
Add CompositionalContainer, a container for compositional data output
This commit is contained in:
commit
2d9aac3043
@ -90,6 +90,7 @@ list (APPEND MAIN_SOURCE_FILES
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opm/simulators/flow/BlackoilModelParameters.cpp
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opm/simulators/flow/BlackoilModelConvergenceMonitor.cpp
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opm/simulators/flow/CollectDataOnIORank.cpp
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opm/simulators/flow/CompositionalContainer.cpp
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opm/simulators/flow/ConvergenceOutputConfiguration.cpp
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opm/simulators/flow/EclGenericWriter.cpp
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opm/simulators/flow/ExtboContainer.cpp
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@ -821,6 +822,7 @@ list (APPEND PUBLIC_HEADER_FILES
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opm/simulators/flow/BlackoilModelProperties.hpp
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opm/simulators/flow/CollectDataOnIORank.hpp
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opm/simulators/flow/CollectDataOnIORank_impl.hpp
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opm/simulators/flow/CompositionalContainer.hpp
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opm/simulators/flow/ConvergenceOutputConfiguration.hpp
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opm/simulators/flow/countGlobalCells.hpp
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opm/simulators/flow/CpGridVanguard.hpp
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|
183
opm/simulators/flow/CompositionalContainer.cpp
Normal file
183
opm/simulators/flow/CompositionalContainer.cpp
Normal file
@ -0,0 +1,183 @@
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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
|
||||
the Free Software Foundation, either version 2 of the License, or
|
||||
(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
|
||||
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
|
||||
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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#include <config.h>
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#include <opm/simulators/flow/CompositionalContainer.hpp>
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#include <opm/material/fluidsystems/GenericOilGasFluidSystem.hpp>
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#include <opm/output/data/Solution.hpp>
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#include <algorithm>
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#include <tuple>
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#include <fmt/format.h>
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namespace Opm {
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template<class FluidSystem>
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void CompositionalContainer<FluidSystem>::
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allocate(const unsigned bufferSize,
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std::map<std::string, int>& rstKeywords)
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{
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if (auto& zmf = rstKeywords["ZMF"]; zmf > 0) {
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this->allocated_ = true;
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zmf = 0;
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for (int i = 0; i < numComponents; ++i) {
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moleFractions_[i].resize(bufferSize, 0.0);
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}
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}
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if (auto& xmf = rstKeywords["XMF"]; xmf > 0 && FluidSystem::phaseIsActive(oilPhaseIdx)) {
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this->allocated_ = true;
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xmf = 0;
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for (int i = 0; i < numComponents; ++i) {
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phaseMoleFractions_[oilPhaseIdx][i].resize(bufferSize, 0.0);
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}
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}
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if (auto& ymf = rstKeywords["YMF"]; ymf > 0 && FluidSystem::phaseIsActive(gasPhaseIdx)) {
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this->allocated_ = true;
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ymf = 0;
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for (int i = 0; i < numComponents; ++i) {
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phaseMoleFractions_[gasPhaseIdx][i].resize(bufferSize, 0.0);
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}
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}
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}
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template<class FluidSystem>
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void CompositionalContainer<FluidSystem>::
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assignGasFractions(const unsigned globalDofIdx,
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const AssignFunction& fractions)
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{
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if (phaseMoleFractions_[gasPhaseIdx][0].empty()) {
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return;
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}
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std::for_each(phaseMoleFractions_[gasPhaseIdx].begin(),
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phaseMoleFractions_[gasPhaseIdx].end(),
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[globalDofIdx, &fractions, c = 0](auto& comp) mutable
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{ comp[globalDofIdx] = fractions(c++); });
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}
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template<class FluidSystem>
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void CompositionalContainer<FluidSystem>::
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assignMoleFractions(const unsigned globalDofIdx,
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const AssignFunction& fractions)
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{
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if (moleFractions_.empty()) {
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return;
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}
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std::for_each(moleFractions_.begin(), moleFractions_.end(),
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[&fractions, globalDofIdx, c = 0](auto& comp) mutable
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{ comp[globalDofIdx] = fractions(c++); });
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}
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template<class FluidSystem>
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void CompositionalContainer<FluidSystem>::
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assignOilFractions(const unsigned globalDofIdx,
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const AssignFunction& fractions)
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{
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if (phaseMoleFractions_[oilPhaseIdx][0].empty()) {
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return;
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}
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std::for_each(phaseMoleFractions_[oilPhaseIdx].begin(),
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phaseMoleFractions_[oilPhaseIdx].end(),
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[globalDofIdx, &fractions, c = 0](auto& comp) mutable
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{ comp[globalDofIdx] = fractions(c++); });
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}
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template<class FluidSystem>
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void CompositionalContainer<FluidSystem>::
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outputRestart(data::Solution& sol,
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ScalarBuffer& oil_saturation)
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{
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using DataEntry =
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std::tuple<std::string, UnitSystem::measure, std::vector<Scalar>&>;
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auto doInsert = [&sol](DataEntry& entry,
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const data::TargetType target)
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{
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if (std::get<2>(entry).empty()) {
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return;
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}
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sol.insert(std::get<std::string>(entry),
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std::get<UnitSystem::measure>(entry),
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std::move(std::get<2>(entry)),
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target);
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};
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auto entries = std::vector<DataEntry>{};
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// ZMF
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if (!moleFractions_[0].empty()) {
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for (int i = 0; i < numComponents; ++i) {
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const auto name = fmt::format("ZMF{}", i + 1); // Generate ZMF1, ZMF2, ...
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entries.emplace_back(name, UnitSystem::measure::identity, moleFractions_[i]);
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}
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}
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// XMF
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if (!phaseMoleFractions_[oilPhaseIdx][0].empty()) {
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for (int i = 0; i < numComponents; ++i) {
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const auto name = fmt::format("XMF{}", i + 1); // Generate XMF1, XMF2, ...
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entries.emplace_back(name, UnitSystem::measure::identity,
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phaseMoleFractions_[oilPhaseIdx][i]);
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}
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}
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// YMF
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if (!phaseMoleFractions_[gasPhaseIdx][0].empty()) {
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for (int i = 0; i < numComponents; ++i) {
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const auto name = fmt::format("YMF{}", i + 1); // Generate YMF1, YMF2, ...
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entries.emplace_back(name, UnitSystem::measure::identity,
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phaseMoleFractions_[gasPhaseIdx][i]);
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}
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}
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if (!oil_saturation.empty()) {
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entries.emplace_back("SOIL", UnitSystem::measure::identity, oil_saturation);
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}
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std::for_each(entries.begin(), entries.end(),
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[&doInsert](auto& array)
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{ doInsert(array, data::TargetType::RESTART_SOLUTION); });
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this->allocated_ = false;
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}
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#define INSTANTIATE_COMP(NUM) \
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template<class T> using FS##NUM = GenericOilGasFluidSystem<T, NUM>; \
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template class CompositionalContainer<FS##NUM<double>>;
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INSTANTIATE_COMP(0)
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INSTANTIATE_COMP(2)
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INSTANTIATE_COMP(3)
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INSTANTIATE_COMP(4)
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INSTANTIATE_COMP(5)
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INSTANTIATE_COMP(6)
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INSTANTIATE_COMP(7)
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} // namespace Opm
|
83
opm/simulators/flow/CompositionalContainer.hpp
Normal file
83
opm/simulators/flow/CompositionalContainer.hpp
Normal file
@ -0,0 +1,83 @@
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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
|
||||
it under the terms of the GNU General Public License as published by
|
||||
the Free Software Foundation, either version 2 of the License, or
|
||||
(at your option) any later version.
|
||||
|
||||
OPM is distributed in the hope that it will be useful,
|
||||
but WITHOUT ANY WARRANTY; without even the implied warranty of
|
||||
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
|
||||
GNU General Public License for more details.
|
||||
|
||||
You should have received a copy of the GNU General Public License
|
||||
along with OPM. If not, see <http://www.gnu.org/licenses/>.
|
||||
Consult the COPYING file in the top-level source directory of this
|
||||
module for the precise wording of the license and the list of
|
||||
copyright holders.
|
||||
*/
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/*!
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* \file
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* \copydoc Opm::OutputBlackOilModule
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*/
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#ifndef OPM_COMPOSITIONAL_CONTAINER_HPP
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#define OPM_COMPOSITIONAL_CONTAINER_HPP
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#include <array>
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#include <functional>
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#include <map>
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#include <string>
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#include <vector>
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namespace Opm {
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namespace data { class Solution; }
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template<class FluidSystem>
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class CompositionalContainer
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{
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using Scalar = typename FluidSystem::Scalar;
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using ScalarBuffer = std::vector<Scalar>;
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static constexpr int numComponents = FluidSystem::numComponents;
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static constexpr int numPhases = FluidSystem::numPhases;
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static constexpr int gasPhaseIdx = FluidSystem::gasPhaseIdx;
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static constexpr int oilPhaseIdx = FluidSystem::oilPhaseIdx;
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static constexpr int waterPhaseIdx = FluidSystem::waterPhaseIdx;
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public:
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void allocate(const unsigned bufferSize,
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std::map<std::string, int>& rstKeywords);
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using AssignFunction = std::function<Scalar(const unsigned)>;
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void assignGasFractions(const unsigned globalDofIdx,
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const AssignFunction& fractions);
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void assignMoleFractions(const unsigned globalDofIdx,
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const AssignFunction& fractions);
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void assignOilFractions(const unsigned globalDofIdx,
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const AssignFunction& fractions);
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void outputRestart(data::Solution& sol,
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ScalarBuffer& oil_saturation);
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bool allocated() const
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{ return allocated_; }
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private:
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bool allocated_ = false;
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// total mole fractions for each component
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std::array<ScalarBuffer, numComponents> moleFractions_;
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// mole fractions for each component in each phase
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std::array<std::array<ScalarBuffer, numComponents>, numPhases> phaseMoleFractions_;
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};
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} // namespace Opm
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#endif // OPM_COMPOSITIONAL_CONTAINER_HPP
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@ -104,8 +104,7 @@ GenericOutputBlackoilModule(const EclipseState& eclState,
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bool enableBrine,
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bool enableSaltPrecipitation,
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bool enableExtbo,
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bool enableMICP,
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bool isCompositional)
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bool enableMICP)
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: eclState_(eclState)
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, schedule_(schedule)
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, summaryState_(summaryState)
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@ -124,7 +123,6 @@ GenericOutputBlackoilModule(const EclipseState& eclState,
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, enableSaltPrecipitation_(enableSaltPrecipitation)
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, enableExtbo_(enableExtbo)
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, enableMICP_(enableMICP)
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, isCompositional_(isCompositional)
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, local_data_valid_(false)
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{
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const auto& fp = eclState_.fieldProps();
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@ -527,38 +525,6 @@ assignToSolution(data::Solution& sol)
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DataEntry{"TMULT_RC", UnitSystem::measure::identity, rockCompTransMultiplier_},
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};
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// basically, for compositional, we can not use std::array for this. We need to generate the ZMF1, ZMF2, and so on
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// and also, we need to map these values.
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// TODO: the following should go to a function
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if (this->isCompositional_) {
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auto compositionalEntries = std::vector<DataEntry>{};
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{
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// ZMF
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for (int i = 0; i < numComponents; ++i) {
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const auto name = fmt::format("ZMF{}", i + 1); // Generate ZMF1, ZMF2, ...
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compositionalEntries.emplace_back(name, UnitSystem::measure::identity, moleFractions_[i]);
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}
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// XMF
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for (int i = 0; i < numComponents; ++i) {
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const auto name = fmt::format("XMF{}", i + 1); // Generate XMF1, XMF2, ...
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compositionalEntries.emplace_back(name, UnitSystem::measure::identity,
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phaseMoleFractions_[oilPhaseIdx][i]);
|
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}
|
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|
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// YMF
|
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for (int i = 0; i < numComponents; ++i) {
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const auto name = fmt::format("YMF{}", i + 1); // Generate YMF1, YMF2, ...
|
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compositionalEntries.emplace_back(name, UnitSystem::measure::identity,
|
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phaseMoleFractions_[gasPhaseIdx][i]);
|
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}
|
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}
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for (auto& array: compositionalEntries) {
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doInsert(array, data::TargetType::RESTART_SOLUTION);
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}
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}
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for (auto& array : baseSolutionVector) {
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doInsert(array, data::TargetType::RESTART_SOLUTION);
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}
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@ -602,15 +568,6 @@ assignToSolution(data::Solution& sol)
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data::TargetType::RESTART_SOLUTION);
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}
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|
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if (this->isCompositional_ && FluidSystem::phaseIsActive(oilPhaseIdx) &&
|
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! this->saturation_[oilPhaseIdx].empty())
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{
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sol.insert("SOIL", UnitSystem::measure::identity,
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std::move(this->saturation_[oilPhaseIdx]),
|
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data::TargetType::RESTART_SOLUTION);
|
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}
|
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|
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|
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if ((eclState_.runspec().co2Storage() || eclState_.runspec().h2Storage()) && !rsw_.empty()) {
|
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auto mfrac = std::vector<double>(this->rsw_.size(), 0.0);
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@ -834,10 +791,14 @@ doAllocBuffers(const unsigned bufferSize,
|
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const bool enableWettingHysteresis,
|
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const unsigned numTracers,
|
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const std::vector<bool>& enableSolTracers,
|
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const unsigned numOutputNnc)
|
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const unsigned numOutputNnc,
|
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std::map<std::string, int> rstKeywords)
|
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{
|
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if (rstKeywords.empty()) {
|
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rstKeywords = schedule_.rst_keywords(reportStepNum);
|
||||
}
|
||||
|
||||
// Output RESTART_OPM_EXTENDED only when explicitly requested by user.
|
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std::map<std::string, int> rstKeywords = schedule_.rst_keywords(reportStepNum);
|
||||
for (auto& [keyword, should_write] : rstKeywords) {
|
||||
if (this->isOutputCreationDirective_(keyword)) {
|
||||
// 'BASIC', 'FREQ' and similar. Don't attempt to create
|
||||
@ -1293,30 +1254,6 @@ doAllocBuffers(const unsigned bufferSize,
|
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overburdenPressure_.resize(bufferSize, 0.0);
|
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}
|
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if (this->isCompositional_) {
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if (rstKeywords["ZMF"] > 0) {
|
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rstKeywords["ZMF"] = 0;
|
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for (int i = 0; i < numComponents; ++i) {
|
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moleFractions_[i].resize(bufferSize, 0.0);
|
||||
}
|
||||
}
|
||||
|
||||
if (rstKeywords["XMF"] > 0 && FluidSystem::phaseIsActive(oilPhaseIdx)) {
|
||||
rstKeywords["XMF"] = 0;
|
||||
for (int i = 0; i < numComponents; ++i) {
|
||||
phaseMoleFractions_[oilPhaseIdx][i].resize(bufferSize, 0.0);
|
||||
}
|
||||
}
|
||||
|
||||
if (rstKeywords["YMF"] > 0 && FluidSystem::phaseIsActive(gasPhaseIdx)) {
|
||||
rstKeywords["YMF"] = 0;
|
||||
for (int i = 0; i < numComponents; ++i) {
|
||||
phaseMoleFractions_[gasPhaseIdx][i].resize(bufferSize, 0.0);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
//Warn for any unhandled keyword
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||||
if (log) {
|
||||
for (auto& keyValue: rstKeywords) {
|
||||
|
@ -319,8 +319,7 @@ protected:
|
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bool enableBrine,
|
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bool enableSaltPrecipitation,
|
||||
bool enableExtbo,
|
||||
bool enableMICP,
|
||||
bool isCompositional = false);
|
||||
bool enableMICP);
|
||||
|
||||
void doAllocBuffers(unsigned bufferSize,
|
||||
unsigned reportStepNum,
|
||||
@ -329,11 +328,12 @@ protected:
|
||||
const bool isRestart,
|
||||
const bool vapparsActive = false,
|
||||
const bool enablePCHysteresis = false,
|
||||
const bool enableNonWettingHysteresis =false,
|
||||
const bool enableNonWettingHysteresis = false,
|
||||
const bool enableWettingHysteresis = false,
|
||||
unsigned numTracers = 0,
|
||||
const std::vector<bool>& enableSolTracers = {},
|
||||
unsigned numOutputNnc = 0);
|
||||
unsigned numOutputNnc = 0,
|
||||
std::map<std::string, int> rstKeywords = {});
|
||||
|
||||
void makeRegionSum(Inplace& inplace,
|
||||
const std::string& region_name,
|
||||
@ -390,7 +390,6 @@ protected:
|
||||
bool enableSaltPrecipitation_{false};
|
||||
bool enableExtbo_{false};
|
||||
bool enableMICP_{false};
|
||||
bool isCompositional_{false};
|
||||
|
||||
bool forceDisableFipOutput_{false};
|
||||
bool forceDisableFipresvOutput_{false};
|
||||
@ -468,10 +467,6 @@ protected:
|
||||
std::array<ScalarBuffer, numPhases> viscosity_;
|
||||
std::array<ScalarBuffer, numPhases> relativePermeability_;
|
||||
|
||||
// total mole fractions for each component
|
||||
std::array<ScalarBuffer, numComponents> moleFractions_;
|
||||
// mole fractions for each component in each phase
|
||||
std::array<std::array<ScalarBuffer, numComponents>, numPhases> phaseMoleFractions_;
|
||||
std::vector<ScalarBuffer> freeTracerConcentrations_;
|
||||
std::vector<ScalarBuffer> solTracerConcentrations_;
|
||||
|
||||
|
@ -32,15 +32,20 @@
|
||||
#include <opm/simulators/utils/moduleVersion.hpp>
|
||||
|
||||
#include <opm/common/Exceptions.hpp>
|
||||
#include <opm/common/ErrorMacros.hpp>
|
||||
#include <opm/common/TimingMacros.hpp>
|
||||
#include <opm/common/OpmLog/OpmLog.hpp>
|
||||
|
||||
#include <opm/input/eclipse/EclipseState/SummaryConfig/SummaryConfig.hpp>
|
||||
|
||||
#include <opm/material/common/Valgrind.hpp>
|
||||
|
||||
#include <opm/models/blackoil/blackoilproperties.hh>
|
||||
#include <opm/models/common/multiphasebaseproperties.hh>
|
||||
#include <opm/models/utils/parametersystem.hpp>
|
||||
#include <opm/models/utils/propertysystem.hh>
|
||||
|
||||
#include <opm/simulators/flow/CompositionalContainer.hpp>
|
||||
#include <opm/simulators/flow/FlowBaseVanguard.hpp>
|
||||
#include <opm/simulators/flow/GenericOutputBlackoilModule.hpp>
|
||||
|
||||
@ -53,8 +58,7 @@
|
||||
#include <vector>
|
||||
|
||||
|
||||
namespace Opm
|
||||
{
|
||||
namespace Opm {
|
||||
|
||||
// forward declaration
|
||||
template <class TypeTag>
|
||||
@ -102,8 +106,7 @@ public:
|
||||
getPropValue<TypeTag, Properties::EnableBrine>(),
|
||||
getPropValue<TypeTag, Properties::EnableSaltPrecipitation>(),
|
||||
getPropValue<TypeTag, Properties::EnableExtbo>(),
|
||||
getPropValue<TypeTag, Properties::EnableMICP>(),
|
||||
true)
|
||||
getPropValue<TypeTag, Properties::EnableMICP>())
|
||||
, simulator_(simulator)
|
||||
{
|
||||
for (auto& region_pair : this->regions_) {
|
||||
@ -155,11 +158,24 @@ public:
|
||||
return;
|
||||
}
|
||||
|
||||
this->doAllocBuffers(bufferSize,
|
||||
reportStepNum,
|
||||
substep,
|
||||
log,
|
||||
isRestart);
|
||||
auto rstKeywords = this->schedule_.rst_keywords(reportStepNum);
|
||||
this->compC_.allocate(bufferSize, rstKeywords);
|
||||
|
||||
this->doAllocBuffers(bufferSize, reportStepNum, substep, log, isRestart,
|
||||
/* vapparsActive =*/ false,
|
||||
/* enablePCHysteresis = */ false,
|
||||
/* enableNonWettingHysteresis =*/ false,
|
||||
/* enableWettingHysteresis =*/ false,
|
||||
/* numTracers = */ 0,
|
||||
/* enableSoltracers =*/ {},
|
||||
/* numOutputNnc =*/ 0,
|
||||
std::move(rstKeywords));
|
||||
}
|
||||
|
||||
void assignToSolution(data::Solution& sol)
|
||||
{
|
||||
this->compC_.outputRestart(sol, this->saturation_[oilPhaseIdx]);
|
||||
BaseType::assignToSolution(sol);
|
||||
}
|
||||
|
||||
/*!
|
||||
@ -187,20 +203,21 @@ public:
|
||||
Valgrind::CheckDefined(this->saturation_[phaseIdx][globalDofIdx]);
|
||||
}
|
||||
|
||||
for (unsigned compIdx = 0; compIdx < numComponents; ++compIdx) {
|
||||
if (this->moleFractions_[compIdx].empty()) continue;
|
||||
if (this->compC_.allocated()) {
|
||||
this->compC_.assignMoleFractions(globalDofIdx,
|
||||
[&fs](const unsigned compIdx)
|
||||
{ return getValue(fs.moleFraction(compIdx)); });
|
||||
|
||||
this->moleFractions_[compIdx][globalDofIdx] = getValue(fs.moleFraction(compIdx));
|
||||
}
|
||||
// XMF and YMF
|
||||
for (unsigned compIdx = 0; compIdx < numComponents; ++compIdx) {
|
||||
if (FluidSystem::phaseIsActive(oilPhaseIdx)) {
|
||||
if (this->phaseMoleFractions_[oilPhaseIdx][compIdx].empty()) continue;
|
||||
this->phaseMoleFractions_[oilPhaseIdx][compIdx][globalDofIdx] = getValue(fs.moleFraction(oilPhaseIdx, compIdx));
|
||||
}
|
||||
if (FluidSystem::phaseIsActive(gasPhaseIdx)) {
|
||||
if (this->phaseMoleFractions_[gasPhaseIdx][compIdx].empty()) continue;
|
||||
this->phaseMoleFractions_[gasPhaseIdx][compIdx][globalDofIdx] = getValue(fs.moleFraction(gasPhaseIdx, compIdx));
|
||||
this->compC_.assignGasFractions(globalDofIdx,
|
||||
[&fs](const unsigned compIdx)
|
||||
{ return getValue(fs.moleFraction(gasPhaseIdx, compIdx)); });
|
||||
}
|
||||
|
||||
if (FluidSystem::phaseIsActive(oilPhaseIdx)) {
|
||||
this->compC_.assignOilFractions(globalDofIdx,
|
||||
[&fs](const unsigned compIdx)
|
||||
{ return getValue(fs.moleFraction(oilPhaseIdx, compIdx)); });
|
||||
}
|
||||
}
|
||||
|
||||
@ -332,6 +349,7 @@ private:
|
||||
}
|
||||
|
||||
const Simulator& simulator_;
|
||||
CompositionalContainer<FluidSystem> compC_;
|
||||
};
|
||||
|
||||
} // namespace Opm
|
||||
|
@ -118,13 +118,13 @@ template<class Scalar> class WellContributions;
|
||||
|
||||
// TODO: where we should put these types, WellInterface or Well Model?
|
||||
// or there is some other strategy, like TypeTag
|
||||
typedef Dune::FieldVector<Scalar, numEq > VectorBlockType;
|
||||
typedef Dune::BlockVector<VectorBlockType> BVector;
|
||||
using VectorBlockType = Dune::FieldVector<Scalar, numEq>;
|
||||
using BVector = Dune::BlockVector<VectorBlockType>;
|
||||
|
||||
typedef BlackOilPolymerModule<TypeTag> PolymerModule;
|
||||
typedef BlackOilMICPModule<TypeTag> MICPModule;
|
||||
using PolymerModule = BlackOilPolymerModule<TypeTag>;
|
||||
using MICPModule = BlackOilMICPModule<TypeTag>;
|
||||
|
||||
// For the conversion between the surface volume rate and resrevoir voidage rate
|
||||
// For the conversion between the surface volume rate and reservoir voidage rate
|
||||
using RateConverterType = RateConverter::
|
||||
SurfaceToReservoirVoidage<FluidSystem, std::vector<int> >;
|
||||
|
||||
|
Loading…
Reference in New Issue
Block a user