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https://github.com/OPM/opm-simulators.git
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Merge pull request #3093 from bska/record-dynamic-wellstatus
Record dynamic wellstatus
This commit is contained in:
commit
16f7bb4be1
@ -217,7 +217,12 @@ namespace Opm {
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Opm::data::Wells wellData() const
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{
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auto wsrpt = well_state_.report(phase_usage_, Opm::UgGridHelpers::globalCell(grid()));
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auto wsrpt = well_state_
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.report(phase_usage_, Opm::UgGridHelpers::globalCell(grid()),
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[this](const int well_ndex) -> bool
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{
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return this->wasDynamicallyShutThisTimeStep(well_ndex);
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});
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this->assignWellGuideRates(wsrpt);
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this->assignShutConnections(wsrpt);
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@ -268,11 +273,12 @@ namespace Opm {
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/// Returns true if the well was actually found and shut.
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bool forceShutWellByNameIfPredictionMode(const std::string& wellname, const double simulation_time);
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void updateEclWell(int timeStepIdx, int well_index);
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void updateEclWell(int timeStepIdx, const std::string& wname);
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void updateEclWell(const int timeStepIdx, const int well_index);
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void updateEclWell(const int timeStepIdx, const std::string& wname);
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bool hasWell(const std::string& wname);
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double wellPI(int well_index) const;
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double wellPI(const int well_index) const;
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double wellPI(const std::string& well_name) const;
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protected:
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Simulator& ebosSimulator_;
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@ -345,7 +351,8 @@ namespace Opm {
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WellTestState wellTestState_;
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std::unique_ptr<GuideRate> guideRate_;
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std::map<std::string, double> node_pressures_; // Storing network pressures for output.
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std::map<std::string, double> node_pressures_{}; // Storing network pressures for output.
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mutable std::unordered_set<std::string> closed_this_step_{};
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// used to better efficiency of calcuation
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mutable BVector scaleAddRes_;
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@ -429,6 +436,8 @@ namespace Opm {
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int numPhases() const;
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int reportStepIndex() const;
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void assembleWellEq(const std::vector<Scalar>& B_avg, const double dt, Opm::DeferredLogger& deferred_logger);
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// some preparation work, mostly related to group control and RESV,
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@ -488,6 +497,8 @@ namespace Opm {
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void runWellPIScaling(const int timeStepIdx, DeferredLogger& local_deferredLogger);
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bool wasDynamicallyShutThisTimeStep(const int well_index) const;
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void assignWellGuideRates(data::Wells& wsrpt) const;
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void assignShutConnections(data::Wells& wsrpt) const;
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void assignGroupValues(const int reportStepIdx,
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@ -298,8 +298,8 @@ namespace Opm {
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::
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beginTimeStep() {
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beginTimeStep()
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{
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updatePerforationIntensiveQuantities();
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Opm::DeferredLogger local_deferredLogger;
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@ -425,7 +425,10 @@ namespace Opm {
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::wellTesting(const int timeStepIdx, const double simulationTime, Opm::DeferredLogger& deferred_logger) {
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BlackoilWellModel<TypeTag>::wellTesting(const int timeStepIdx,
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const double simulationTime,
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Opm::DeferredLogger& deferred_logger)
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{
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const auto& wtest_config = schedule()[timeStepIdx].wtest_config();
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if (wtest_config.size() != 0) { // there is a WTEST request
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@ -435,7 +438,9 @@ namespace Opm {
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std::vector< Scalar > B_avg(numComponents(), Scalar());
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computeAverageFormationFactor(B_avg);
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const auto& wellsForTesting = wellTestState_.updateWells(wtest_config, wells_ecl_, simulationTime);
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const auto wellsForTesting = wellTestState_
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.updateWells(wtest_config, wells_ecl_, simulationTime);
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for (const auto& testWell : wellsForTesting) {
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const std::string& well_name = testWell.first;
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@ -444,9 +449,12 @@ namespace Opm {
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// some preparation before the well can be used
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well->init(&phase_usage_, depth_, gravity_, local_num_cells_, B_avg);
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const Well& wellEcl = schedule().getWell(well_name, timeStepIdx);
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double well_efficiency_factor = wellEcl.getEfficiencyFactor();
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WellGroupHelpers::accumulateGroupEfficiencyFactor(schedule().getGroup(wellEcl.groupName(), timeStepIdx), schedule(), timeStepIdx, well_efficiency_factor);
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WellGroupHelpers::accumulateGroupEfficiencyFactor(schedule().getGroup(wellEcl.groupName(), timeStepIdx),
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schedule(), timeStepIdx, well_efficiency_factor);
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well->setWellEfficiencyFactor(well_efficiency_factor);
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well->setVFPProperties(vfp_properties_.get());
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well->setGuideRate(guideRate_.get());
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@ -459,11 +467,16 @@ namespace Opm {
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}
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}
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// called at the end of a report step
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::
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endReportStep() {
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endReportStep()
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{
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// Clear the communication data structures for above values.
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for (auto&& pinfo : local_parallel_well_info_)
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{
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@ -471,17 +484,27 @@ namespace Opm {
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}
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}
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// called at the end of a report step
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template<typename TypeTag>
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const SimulatorReportSingle&
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BlackoilWellModel<TypeTag>::
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lastReport() const {return last_report_; }
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// called at the end of a time step
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::
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timeStepSucceeded(const double& simulationTime, const double dt) {
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timeStepSucceeded(const double& simulationTime, const double dt)
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{
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this->closed_this_step_.clear();
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// time step is finished and we are not any more at the beginning of an report step
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report_step_starts_ = false;
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@ -735,12 +758,27 @@ namespace Opm {
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if (nw > 0) {
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well_container.reserve(nw);
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for (int w = 0; w < nw; ++w) {
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const Well& well_ecl = wells_ecl_[w];
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const std::string& well_name = well_ecl.name();
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const auto well_status = this->schedule()
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.getWell(well_name, time_step).getStatus();
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if ((well_ecl.getStatus() == Well::Status::SHUT) ||
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(well_status == Well::Status::SHUT))
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{
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// Due to ACTIONX the well might have been closed behind our back.
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if (well_ecl.getStatus() != Well::Status::SHUT) {
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this->closed_this_step_.insert(well_name);
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well_state_.shutWell(w);
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}
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continue;
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}
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// A new WCON keywords can re-open a well that was closed/shut due to Physical limit
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if ( wellTestState_.hasWellClosed(well_name)) {
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if (this->wellTestState_.hasWellClosed(well_name)) {
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// TODO: more checking here, to make sure this standard more specific and complete
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// maybe there is some WCON keywords will not open the well
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if (well_state_.effectiveEventsOccurred(w)) {
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@ -760,7 +798,8 @@ namespace Opm {
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// something like wellTestState_.hasWell(well_name)?
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bool wellIsStopped = false;
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if (wellTestState_.hasWellClosed(well_name, WellTestConfig::Reason::ECONOMIC) ||
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wellTestState_.hasWellClosed(well_name, WellTestConfig::Reason::PHYSICAL) ) {
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wellTestState_.hasWellClosed(well_name, WellTestConfig::Reason::PHYSICAL))
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{
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if (well_ecl.getAutomaticShutIn()) {
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// shut wells are not added to the well container
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well_state_.shutWell(w);
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@ -772,39 +811,45 @@ namespace Opm {
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}
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}
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// Due to ACTIONX the well might have been closed 'behind our back'.
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const auto well_status = schedule().getWell(well_name, time_step).getStatus();
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if (well_status == Well::Status::SHUT) {
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well_state_.shutWell(w);
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continue;
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}
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// If a production well disallows crossflow and its
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// (prediction type) rate control is zero, then it is effectively shut.
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if (!well_ecl.getAllowCrossFlow() && well_ecl.isProducer() && well_ecl.predictionMode()) {
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const auto& summaryState = ebosSimulator_.vanguard().summaryState();
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auto prod_controls = well_ecl.productionControls(summaryState);
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const auto prod_controls = well_ecl.productionControls(summaryState);
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auto is_zero = [](const double x)
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{
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return std::isfinite(x) && !std::isnormal(x);
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};
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bool zero_rate_control = false;
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switch (prod_controls.cmode) {
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case Well::ProducerCMode::ORAT:
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zero_rate_control = (prod_controls.oil_rate == 0.0);
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zero_rate_control = is_zero(prod_controls.oil_rate);
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break;
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case Well::ProducerCMode::WRAT:
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zero_rate_control = (prod_controls.water_rate == 0.0);
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zero_rate_control = is_zero(prod_controls.water_rate);
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break;
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case Well::ProducerCMode::GRAT:
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zero_rate_control = (prod_controls.gas_rate == 0.0);
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zero_rate_control = is_zero(prod_controls.gas_rate);
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break;
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case Well::ProducerCMode::LRAT:
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zero_rate_control = (prod_controls.liquid_rate == 0.0);
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zero_rate_control = is_zero(prod_controls.liquid_rate);
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break;
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case Well::ProducerCMode::RESV:
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zero_rate_control = (prod_controls.resv_rate == 0.0);
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zero_rate_control = is_zero(prod_controls.resv_rate);
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break;
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default:
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// Might still have zero rate controls, but is pressure controlled.
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zero_rate_control = false;
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break;
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}
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if (zero_rate_control) {
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// Treat as shut, do not add to container.
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local_deferredLogger.info(" Well shut due to zero rate control and disallowing crossflow: " + well_ecl.name());
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@ -867,10 +912,11 @@ namespace Opm {
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const auto& perf_data = this->well_perf_data_[wellID];
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// Cater for case where local part might have no perforations.
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const int pvtreg = perf_data.empty() ?
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0 : pvt_region_idx_[perf_data.front().cell_index];
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const auto pvtreg = perf_data.empty()
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? 0 : pvt_region_idx_[perf_data.front().cell_index];
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const auto& parallel_well_info = *local_parallel_well_info_[wellID];
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auto global_pvtreg = parallel_well_info.broadcastFirstPerforationValue(pvtreg);
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const auto global_pvtreg = parallel_well_info.broadcastFirstPerforationValue(pvtreg);
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return std::make_unique<WellType>(this->wells_ecl_[wellID],
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parallel_well_info,
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@ -1372,8 +1418,15 @@ namespace Opm {
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{
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Opm::DeferredLogger local_deferredLogger;
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for (const auto& well : well_container_) {
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const auto wasClosed = wellTestState.hasWellClosed(well->name());
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well->updateWellTestState(well_state_, simulationTime, /*writeMessageToOPMLog=*/ true, wellTestState, local_deferredLogger);
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if (!wasClosed && wellTestState.hasWellClosed(well->name())) {
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this->closed_this_step_.insert(well->name());
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}
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}
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Opm::DeferredLogger global_deferredLogger = gatherDeferredLogger(local_deferredLogger);
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if (terminal_output_) {
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global_deferredLogger.logMessages();
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@ -1426,11 +1479,13 @@ namespace Opm {
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}
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}
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}
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logAndCheckForExceptionsAndThrow(deferred_logger, exception_thrown, "computeWellPotentials() failed.", terminal_output_);
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logAndCheckForExceptionsAndThrow(deferred_logger, exception_thrown,
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"computeWellPotentials() failed.",
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terminal_output_);
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// Store it in the well state
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well_state_.wellPotentials() = well_potentials;
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}
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@ -2536,7 +2591,7 @@ namespace Opm {
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::
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updateEclWell(int timeStepIdx, int well_index)
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updateEclWell(const int timeStepIdx, const int well_index)
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{
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const auto& schedule = this->ebosSimulator_.vanguard().schedule();
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const auto& wname = this->wells_ecl_[well_index].name();
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@ -2556,23 +2611,36 @@ namespace Opm {
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this->prod_index_calc_[well_index].reInit(well);
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}
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::
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updateEclWell(int timeStepIdx, const std::string& wname) {
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auto well_iter = std::find_if( this->wells_ecl_.begin(), this->wells_ecl_.end(), [wname] (const auto& well) -> bool { return well.name() == wname;});
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if (well_iter == this->wells_ecl_.end())
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throw std::logic_error("Could not find well: " + wname);
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updateEclWell(const int timeStepIdx, const std::string& wname)
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{
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auto well_iter = std::find_if(this->wells_ecl_.begin(), this->wells_ecl_.end(),
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[&wname](const auto& well) -> bool
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{
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return well.name() == wname;
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});
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if (well_iter == this->wells_ecl_.end()) {
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throw std::logic_error { "Could not find well: " + wname };
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}
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auto well_index = std::distance(this->wells_ecl_.begin(), well_iter);
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this->updateEclWell(timeStepIdx, well_index);
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}
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template<typename TypeTag>
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double
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BlackoilWellModel<TypeTag>::
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wellPI(int well_index) const
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wellPI(const int well_index) const
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{
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const auto& pu = this->phase_usage_;
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const auto np = this->numPhases();
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@ -2603,20 +2671,45 @@ namespace Opm {
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}
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}
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template<typename TypeTag>
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double
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BlackoilWellModel<TypeTag>::
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wellPI(const std::string& well_name) const
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{
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auto well_iter = std::find_if(this->wells_ecl_.begin(), this->wells_ecl_.end(), [&well_name](const Well& well) { return well.name() == well_name; });
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if (well_iter == this->wells_ecl_.end())
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throw std::logic_error("Could not find well: " + well_name);
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auto well_iter = std::find_if(this->wells_ecl_.begin(), this->wells_ecl_.end(),
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[&well_name](const Well& well)
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{
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return well.name() == well_name;
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});
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if (well_iter == this->wells_ecl_.end()) {
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throw std::logic_error { "Could not find well: " + well_name };
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}
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auto well_index = std::distance(this->wells_ecl_.begin(), well_iter);
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return this->wellPI(well_index);
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}
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|
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|
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|
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|
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template <typename TypeTag>
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int
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BlackoilWellModel<TypeTag>::
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reportStepIndex() const
|
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{
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return std::max(this->ebosSimulator_.episodeIndex(), 0);
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}
|
||||
|
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|
||||
|
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|
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|
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template<typename TypeTag>
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void
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BlackoilWellModel<TypeTag>::
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@ -2630,20 +2723,20 @@ namespace Opm {
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auto hasWellPIEvent = [this, timeStepIdx](const int well_index) -> bool
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{
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return this->schedule()[timeStepIdx]
|
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.wellgroup_events().hasEvent(this->wells_ecl_[well_index].name(),
|
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return this->schedule()[timeStepIdx].wellgroup_events()
|
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.hasEvent(this->wells_ecl_[well_index].name(),
|
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ScheduleEvents::Events::WELL_PRODUCTIVITY_INDEX);
|
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};
|
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|
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auto rescaleWellPI =
|
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[this, timeStepIdx](const int well_index,
|
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const double newWellPI) -> void
|
||||
{
|
||||
{
|
||||
const auto& wname = this->wells_ecl_[well_index].name();
|
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|
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auto& schedule = this->ebosSimulator_.vanguard().schedule(); // Mutable
|
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schedule.applyWellProdIndexScaling(wname, timeStepIdx, newWellPI);
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}
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|
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this->updateEclWell(timeStepIdx, well_index);
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};
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@ -2672,8 +2765,7 @@ namespace Opm {
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const auto nw = this->numLocalWells();
|
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for (auto wellID = 0*nw; wellID < nw; ++wellID) {
|
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if (hasWellPIEvent(wellID)) {
|
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const auto newWellPI = this->wellPI(wellID);
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rescaleWellPI(wellID, newWellPI);
|
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rescaleWellPI(wellID, this->wellPI(wellID));
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}
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}
|
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@ -2684,6 +2776,19 @@ namespace Opm {
|
||||
|
||||
|
||||
|
||||
template <typename TypeTag>
|
||||
bool
|
||||
BlackoilWellModel<TypeTag>::
|
||||
wasDynamicallyShutThisTimeStep(const int well_index) const
|
||||
{
|
||||
return this->closed_this_step_.find(this->wells_ecl_[well_index].name())
|
||||
!= this->closed_this_step_.end();
|
||||
}
|
||||
|
||||
|
||||
|
||||
|
||||
|
||||
template<typename TypeTag>
|
||||
void
|
||||
BlackoilWellModel<TypeTag>::
|
||||
@ -2764,15 +2869,30 @@ namespace Opm {
|
||||
BlackoilWellModel<TypeTag>::
|
||||
assignShutConnections(data::Wells& wsrpt) const
|
||||
{
|
||||
auto wellID = 0;
|
||||
|
||||
for (const auto& well : this->wells_ecl_) {
|
||||
auto xwPos = wsrpt.find(well.name());
|
||||
if (xwPos == wsrpt.end()) { // No well results. Unexpected.
|
||||
continue;
|
||||
auto& xwel = wsrpt[well.name()]; // data::Wells is a std::map<>
|
||||
|
||||
xwel.dynamicStatus = this->schedule()
|
||||
.getWell(well.name(), this->reportStepIndex()).getStatus();
|
||||
|
||||
const auto wellIsOpen = xwel.dynamicStatus == Well::Status::OPEN;
|
||||
auto skip = [wellIsOpen](const Connection& conn)
|
||||
{
|
||||
return wellIsOpen && (conn.state() != Connection::State::SHUT);
|
||||
};
|
||||
|
||||
if (this->wellTestState_.hasWellClosed(well.name()) &&
|
||||
!this->wasDynamicallyShutThisTimeStep(wellID))
|
||||
{
|
||||
xwel.dynamicStatus = well.getAutomaticShutIn()
|
||||
? Well::Status::SHUT : Well::Status::STOP;
|
||||
}
|
||||
|
||||
auto& xcon = xwPos->second.connections;
|
||||
auto& xcon = xwel.connections;
|
||||
for (const auto& conn : well.getConnections()) {
|
||||
if (conn.state() != Connection::State::SHUT) {
|
||||
if (skip(conn)) {
|
||||
continue;
|
||||
}
|
||||
|
||||
@ -2783,6 +2903,8 @@ namespace Opm {
|
||||
xc.effective_Kh = conn.Kh();
|
||||
xc.trans_factor = conn.CF();
|
||||
}
|
||||
|
||||
++wellID;
|
||||
}
|
||||
}
|
||||
|
||||
|
@ -2295,11 +2295,11 @@ namespace Opm
|
||||
|
||||
// Sum with communication in case of distributed well.
|
||||
const auto& comm = this->parallel_well_info_.communication();
|
||||
if (comm.size() > 1)
|
||||
{
|
||||
if (comm.size() > 1) {
|
||||
comm.sum(wellPI, np);
|
||||
}
|
||||
assert (static_cast<int>(subsetPerfID) == this->number_of_perforations_ &&
|
||||
|
||||
assert ((static_cast<int>(subsetPerfID) == this->number_of_perforations_) &&
|
||||
"Internal logic error in processing connections for PI/II");
|
||||
}
|
||||
|
||||
|
@ -30,6 +30,7 @@
|
||||
#include <array>
|
||||
#include <cassert>
|
||||
#include <cstddef>
|
||||
#include <functional>
|
||||
#include <map>
|
||||
#include <memory>
|
||||
#include <stdexcept>
|
||||
@ -207,6 +208,7 @@ namespace Opm
|
||||
|
||||
return well_info.isOwner();
|
||||
}
|
||||
|
||||
/// The number of wells present.
|
||||
int numWells() const
|
||||
{
|
||||
@ -237,15 +239,21 @@ namespace Opm
|
||||
this->thp_[well_index] = 0;
|
||||
}
|
||||
|
||||
virtual data::Wells report(const PhaseUsage& pu, const int* globalCellIdxMap) const
|
||||
virtual data::Wells
|
||||
report(const PhaseUsage& pu,
|
||||
const int* globalCellIdxMap,
|
||||
const std::function<bool(const int)>& wasDynamicallyClosed) const
|
||||
{
|
||||
using rt = data::Rates::opt;
|
||||
|
||||
data::Wells dw;
|
||||
for( const auto& itr : this->wellMap_ ) {
|
||||
const auto well_index = itr.second[ 0 ];
|
||||
if (this->status_[well_index] == Well::Status::SHUT)
|
||||
if ((this->status_[well_index] == Well::Status::SHUT) &&
|
||||
! wasDynamicallyClosed(well_index))
|
||||
{
|
||||
continue;
|
||||
}
|
||||
|
||||
const auto& pwinfo = *parallel_well_info_[well_index];
|
||||
using WellT = std::remove_reference_t<decltype(dw[ itr.first ])>;
|
||||
|
@ -32,6 +32,7 @@
|
||||
#include <algorithm>
|
||||
#include <array>
|
||||
#include <cassert>
|
||||
#include <functional>
|
||||
#include <iostream>
|
||||
#include <map>
|
||||
#include <numeric>
|
||||
@ -546,16 +547,20 @@ namespace Opm
|
||||
return it->second;
|
||||
}
|
||||
|
||||
|
||||
|
||||
data::Wells report(const PhaseUsage &pu, const int* globalCellIdxMap) const override
|
||||
data::Wells
|
||||
report(const PhaseUsage &pu,
|
||||
const int* globalCellIdxMap,
|
||||
const std::function<bool(const int)>& wasDynamicallyClosed) const override
|
||||
{
|
||||
data::Wells res = WellState::report(pu, globalCellIdxMap);
|
||||
data::Wells res =
|
||||
WellState::report(pu, globalCellIdxMap, wasDynamicallyClosed);
|
||||
|
||||
const int nw = this->numWells();
|
||||
if( nw == 0 ) return res;
|
||||
const int np = pu.num_phases;
|
||||
if (nw == 0) {
|
||||
return res;
|
||||
}
|
||||
|
||||
const int np = pu.num_phases;
|
||||
|
||||
using rt = data::Rates::opt;
|
||||
std::vector<rt> phs(np);
|
||||
@ -571,58 +576,43 @@ namespace Opm
|
||||
phs.at( pu.phase_pos[Gas] ) = rt::gas;
|
||||
}
|
||||
|
||||
/* this is a reference or example on **how** to convert from
|
||||
* WellState to something understood by opm-output. it is intended
|
||||
* to be properly implemented and maintained as a part of
|
||||
* simulators, as it relies on simulator internals, details and
|
||||
* representations.
|
||||
*/
|
||||
// This is a reference or example on **how** to convert from
|
||||
// WellState to something understood by opm-common's output
|
||||
// layer. It is intended to be properly implemented and
|
||||
// maintained as a part of simulators, as it relies on simulator
|
||||
// internals, details and representations.
|
||||
|
||||
for (const auto& wt : this->wellMap()) {
|
||||
const auto w = wt.second[ 0 ];
|
||||
const auto& pwinfo = *parallel_well_info_[w];
|
||||
if ((this->status_[w] == Well::Status::SHUT) || !pwinfo.isOwner())
|
||||
if (((this->status_[w] == Well::Status::SHUT) &&
|
||||
! wasDynamicallyClosed(w)) ||
|
||||
! this->parallel_well_info_[w]->isOwner())
|
||||
{
|
||||
continue;
|
||||
}
|
||||
|
||||
auto& well = res.at(wt.first);
|
||||
//well.injectionControl = static_cast<int>(this->currentInjectionControls()[ w ]);
|
||||
//well.productionControl = static_cast<int>(this->currentProductionControls()[ w ]);
|
||||
const int well_rate_index = w * pu.num_phases;
|
||||
|
||||
if (pu.phase_used[Water]) {
|
||||
well.rates.set( rt::reservoir_water, this->well_reservoir_rates_[well_rate_index + pu.phase_pos[Water]] );
|
||||
const auto i = well_rate_index + pu.phase_pos[Water];
|
||||
well.rates.set(rt::reservoir_water, this->well_reservoir_rates_[i]);
|
||||
well.rates.set(rt::productivity_index_water, this->productivity_index_[i]);
|
||||
well.rates.set(rt::well_potential_water, this->well_potentials_[i]);
|
||||
}
|
||||
|
||||
if (pu.phase_used[Oil]) {
|
||||
well.rates.set( rt::reservoir_oil, this->well_reservoir_rates_[well_rate_index + pu.phase_pos[Oil]] );
|
||||
const auto i = well_rate_index + pu.phase_pos[Oil];
|
||||
well.rates.set(rt::reservoir_oil, this->well_reservoir_rates_[i]);
|
||||
well.rates.set(rt::productivity_index_oil, this->productivity_index_[i]);
|
||||
well.rates.set(rt::well_potential_oil, this->well_potentials_[i]);
|
||||
}
|
||||
|
||||
if (pu.phase_used[Gas]) {
|
||||
well.rates.set( rt::reservoir_gas, this->well_reservoir_rates_[well_rate_index + pu.phase_pos[Gas]] );
|
||||
}
|
||||
|
||||
if ( pu.phase_used[Water] ) {
|
||||
well.rates.set( rt::productivity_index_water, this->productivity_index_[well_rate_index + pu.phase_pos[Water]] );
|
||||
}
|
||||
|
||||
if ( pu.phase_used[Oil] ) {
|
||||
well.rates.set( rt::productivity_index_oil, this->productivity_index_[well_rate_index + pu.phase_pos[Oil]] );
|
||||
}
|
||||
|
||||
if ( pu.phase_used[Gas] ) {
|
||||
well.rates.set( rt::productivity_index_gas, this->productivity_index_[well_rate_index + pu.phase_pos[Gas]] );
|
||||
}
|
||||
|
||||
if ( pu.phase_used[Water] ) {
|
||||
well.rates.set( rt::well_potential_water, this->well_potentials_[well_rate_index + pu.phase_pos[Water]] );
|
||||
}
|
||||
|
||||
if ( pu.phase_used[Oil] ) {
|
||||
well.rates.set( rt::well_potential_oil, this->well_potentials_[well_rate_index + pu.phase_pos[Oil]] );
|
||||
}
|
||||
|
||||
if ( pu.phase_used[Gas] ) {
|
||||
well.rates.set( rt::well_potential_gas, this->well_potentials_[well_rate_index + pu.phase_pos[Gas]] );
|
||||
const auto i = well_rate_index + pu.phase_pos[Gas];
|
||||
well.rates.set(rt::reservoir_gas, this->well_reservoir_rates_[i]);
|
||||
well.rates.set(rt::productivity_index_gas, this->productivity_index_[i]);
|
||||
well.rates.set(rt::well_potential_gas, this->well_potentials_[i]);
|
||||
}
|
||||
|
||||
if (pu.has_solvent || pu.has_zFraction) {
|
||||
|
@ -274,7 +274,7 @@ BOOST_AUTO_TEST_CASE(Pressure)
|
||||
|
||||
setSegPress(wells, wstate);
|
||||
|
||||
const auto rpt = wstate.report(setup.pu, setup.grid.c_grid()->global_cell);
|
||||
const auto rpt = wstate.report(setup.pu, setup.grid.c_grid()->global_cell, [](const int){return false;});
|
||||
|
||||
{
|
||||
const auto& xw = rpt.at("INJE01");
|
||||
@ -323,7 +323,7 @@ BOOST_AUTO_TEST_CASE(Rates)
|
||||
|
||||
setSegRates(wells, pu, wstate);
|
||||
|
||||
const auto rpt = wstate.report(pu, setup.grid.c_grid()->global_cell);
|
||||
const auto rpt = wstate.report(pu, setup.grid.c_grid()->global_cell, [](const int){return false;});
|
||||
|
||||
const auto wat = pu.phase_used[Opm::BlackoilPhases::Aqua];
|
||||
const auto oil = pu.phase_used[Opm::BlackoilPhases::Liquid];
|
||||
|
Loading…
Reference in New Issue
Block a user