28 #ifndef EWOMS_BLACK_OIL_POLYMER_MODULE_HH 29 #define EWOMS_BLACK_OIL_POLYMER_MODULE_HH 31 #include <dune/common/fvector.hh> 33 #include <opm/common/OpmLog/OpmLog.hpp> 34 #include <opm/common/utility/gpuDecorators.hpp> 36 #include <opm/material/common/MathToolbox.hpp> 64 template <
class TypeTag>
65 class BlackOilPolymerModule<TypeTag, true>
79 using Toolbox = MathToolbox<Evaluation>;
81 using TabulatedFunction =
typename BlackOilPolymerParams<Scalar>::TabulatedFunction;
82 using TabulatedTwoDFunction =
typename BlackOilPolymerParams<Scalar>::TabulatedTwoDFunction;
84 static constexpr
unsigned polymerConcentrationIdx = Indices::polymerConcentrationIdx;
85 static constexpr
unsigned polymerMoleWeightIdx = Indices::polymerMoleWeightIdx;
86 static constexpr
unsigned contiPolymerEqIdx = Indices::contiPolymerEqIdx;
87 static constexpr
unsigned contiPolymerMolarWeightEqIdx = Indices::contiPolymerMWEqIdx;
88 static constexpr
unsigned waterPhaseIdx = FluidSystem::waterPhaseIdx;
90 static constexpr
bool enablePolymer =
true;
91 static constexpr
bool enablePolymerMolarWeight = getPropValue<TypeTag, Properties::EnablePolymerMW>();
93 static constexpr
unsigned numEq = getPropValue<TypeTag, Properties::NumEq>();
107 const auto iterTable = params_.plymwinjTables_.find(tableNumber);
108 if (iterTable != params_.plymwinjTables_.end()) {
109 return iterTable->second;
112 throw std::runtime_error(
" the PLYMWINJ table " + std::to_string(tableNumber) +
" does not exist\n");
121 const auto iterTable = params_.skprwatTables_.find(tableNumber);
122 if (iterTable != params_.skprwatTables_.end()) {
123 return iterTable->second;
126 throw std::runtime_error(
" the SKPRWAT table " + std::to_string(tableNumber) +
" does not exist\n");
136 const auto iterTable = params_.skprpolyTables_.find(tableNumber);
137 if (iterTable != params_.skprpolyTables_.end()) {
138 return iterTable->second;
141 throw std::runtime_error(
" the SKPRPOLY table " + std::to_string(tableNumber) +
" does not exist\n");
157 Simulator& simulator)
162 static bool primaryVarApplies(
unsigned pvIdx)
164 if constexpr (enablePolymerMolarWeight) {
165 return pvIdx == polymerConcentrationIdx || pvIdx == polymerMoleWeightIdx;
168 return pvIdx == polymerConcentrationIdx;
172 static std::string primaryVarName(
unsigned pvIdx)
174 assert(primaryVarApplies(pvIdx));
176 if (pvIdx == polymerConcentrationIdx) {
177 return "polymer_waterconcentration";
180 return "polymer_molecularweight";
184 static Scalar primaryVarWeight([[maybe_unused]]
unsigned pvIdx)
186 assert(primaryVarApplies(pvIdx));
189 return static_cast<Scalar
>(1.0);
192 static bool eqApplies(
unsigned eqIdx)
194 if constexpr (enablePolymerMolarWeight) {
195 return eqIdx == contiPolymerEqIdx || eqIdx == contiPolymerMolarWeightEqIdx;
198 return eqIdx == contiPolymerEqIdx;
202 static std::string eqName(
unsigned eqIdx)
204 assert(eqApplies(eqIdx));
206 if (eqIdx == contiPolymerEqIdx) {
207 return "conti^polymer";
210 return "conti^polymer_molecularweight";
214 static Scalar eqWeight([[maybe_unused]]
unsigned eqIdx)
216 assert(eqApplies(eqIdx));
219 return static_cast<Scalar
>(1.0);
223 template <
class StorageType>
224 OPM_HOST_DEVICE
static void addStorage(StorageType& storage,
225 const IntensiveQuantities& intQuants)
227 using LhsEval =
typename StorageType::value_type;
229 const auto& fs = intQuants.fluidState();
232 const LhsEval surfaceVolumeWater =
233 max(Toolbox::template decay<LhsEval>(fs.saturation(waterPhaseIdx)) *
234 Toolbox::template decay<LhsEval>(fs.invB(waterPhaseIdx)) *
235 Toolbox::template decay<LhsEval>(intQuants.porosity()),
239 const LhsEval massPolymer =
241 Toolbox::template decay<LhsEval>(intQuants.polymerConcentration()) *
242 (1.0 - Toolbox::template decay<LhsEval>(intQuants.polymerDeadPoreVolume()));
245 const LhsEval adsorptionPolymer =
246 Toolbox::template decay<LhsEval>(1.0 - intQuants.porosity()) *
247 Toolbox::template decay<LhsEval>(intQuants.polymerRockDensity()) *
248 Toolbox::template decay<LhsEval>(intQuants.polymerAdsorption());
250 LhsEval accumulationPolymer = massPolymer + adsorptionPolymer;
252 storage[contiPolymerEqIdx] += accumulationPolymer;
255 if constexpr (enablePolymerMolarWeight) {
256 accumulationPolymer = max(accumulationPolymer, 1e-10);
258 storage[contiPolymerMolarWeightEqIdx] +=
259 accumulationPolymer * Toolbox::template decay<LhsEval>(intQuants.polymerMoleWeight());
263 static void computeFlux(RateVector& flux,
264 const ElementContext& elemCtx,
268 const auto& extQuants = elemCtx.extensiveQuantities(scvfIdx, timeIdx);
270 const unsigned upIdx = extQuants.upstreamIndex(FluidSystem::waterPhaseIdx);
271 const unsigned inIdx = extQuants.interiorIndex();
272 const auto& up = elemCtx.intensiveQuantities(upIdx, timeIdx);
273 const unsigned contiWaterEqIdx =
274 Indices::conti0EqIdx + FluidSystem::canonicalToActiveCompIdx(FluidSystem::waterCompIdx);
276 if (upIdx == inIdx) {
277 flux[contiPolymerEqIdx] =
278 extQuants.volumeFlux(waterPhaseIdx) *
279 up.fluidState().invB(waterPhaseIdx) *
280 up.polymerViscosityCorrection() /
281 extQuants.polymerShearFactor() *
282 up.polymerConcentration();
285 flux[contiWaterEqIdx] /= extQuants.waterShearFactor();
288 flux[contiPolymerEqIdx] =
289 extQuants.volumeFlux(waterPhaseIdx) *
290 decay<Scalar>(up.fluidState().invB(waterPhaseIdx)) *
291 decay<Scalar>(up.polymerViscosityCorrection()) /
292 decay<Scalar>(extQuants.polymerShearFactor()) *
293 decay<Scalar>(up.polymerConcentration());
296 flux[contiWaterEqIdx] /= decay<Scalar>(extQuants.waterShearFactor());
300 if constexpr (enablePolymerMolarWeight) {
301 if (upIdx == inIdx) {
302 flux[contiPolymerMolarWeightEqIdx] =
303 flux[contiPolymerEqIdx] * up.polymerMoleWeight();
306 flux[contiPolymerMolarWeightEqIdx] =
307 flux[contiPolymerEqIdx] * decay<Scalar>(up.polymerMoleWeight());
321 return static_cast<Scalar
>(0.0);
324 template <
class DofEntity>
325 static void serializeEntity(
const Model& model, std::ostream& outstream,
const DofEntity& dof)
327 const unsigned dofIdx = model.dofMapper().index(dof);
328 const PrimaryVariables& priVars = model.solution(0)[dofIdx];
329 outstream << priVars[polymerConcentrationIdx];
330 outstream << priVars[polymerMoleWeightIdx];
333 template <
class DofEntity>
334 static void deserializeEntity(Model& model, std::istream& instream,
const DofEntity& dof)
336 const unsigned dofIdx = model.dofMapper().index(dof);
337 PrimaryVariables& priVars0 = model.solution(0)[dofIdx];
338 PrimaryVariables& priVars1 = model.solution(1)[dofIdx];
340 instream >> priVars0[polymerConcentrationIdx];
341 instream >> priVars0[polymerMoleWeightIdx];
344 priVars1[polymerConcentrationIdx] = priVars0[polymerConcentrationIdx];
345 priVars1[polymerMoleWeightIdx] = priVars0[polymerMoleWeightIdx];
348 static Scalar plyrockDeadPoreVolume(
const ElementContext& elemCtx,
352 const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
353 return params_.plyrockDeadPoreVolume_[satnumRegionIdx];
356 static Scalar plyrockResidualResistanceFactor(
const ElementContext& elemCtx,
360 const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
361 return params_.plyrockResidualResistanceFactor_[satnumRegionIdx];
364 static Scalar plyrockRockDensityFactor(
const ElementContext& elemCtx,
368 const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
369 return params_.plyrockRockDensityFactor_[satnumRegionIdx];
372 static Scalar plyrockAdsorbtionIndex(
const ElementContext& elemCtx,
376 const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
377 return params_.plyrockAdsorbtionIndex_[satnumRegionIdx];
380 static Scalar plyrockMaxAdsorbtion(
const ElementContext& elemCtx,
384 const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
385 return params_.plyrockMaxAdsorbtion_[satnumRegionIdx];
388 static const TabulatedFunction&
389 plyadsAdsorbedPolymer(
const ElementContext& elemCtx,
393 const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
394 return params_.plyadsAdsorbedPolymer_[satnumRegionIdx];
397 static const TabulatedFunction&
398 plyviscViscosityMultiplierTable(
const ElementContext& elemCtx,
402 unsigned pvtnumRegionIdx =
403 elemCtx.problem().pvtRegionIndex(elemCtx, scvIdx, timeIdx);
404 return params_.plyviscViscosityMultiplierTable_[pvtnumRegionIdx];
407 static const TabulatedFunction&
408 plyviscViscosityMultiplierTable(
unsigned pvtnumRegionIdx)
409 {
return params_.plyviscViscosityMultiplierTable_[pvtnumRegionIdx]; }
411 static Scalar plymaxMaxConcentration(
const ElementContext& elemCtx,
415 const unsigned polymerMixRegionIdx =
416 elemCtx.problem().plmixnumRegionIndex(elemCtx, scvIdx, timeIdx);
417 return params_.plymaxMaxConcentration_[polymerMixRegionIdx];
420 static Scalar plymixparToddLongstaff(
const ElementContext& elemCtx,
424 const unsigned polymerMixRegionIdx =
425 elemCtx.problem().plmixnumRegionIndex(elemCtx, scvIdx, timeIdx);
426 return params_.plymixparToddLongstaff_[polymerMixRegionIdx];
429 static const typename BlackOilPolymerParams<Scalar>::PlyvmhCoefficients&
430 plyvmhCoefficients(
const ElementContext& elemCtx,
431 const unsigned scvIdx,
432 const unsigned timeIdx)
434 const unsigned polymerMixRegionIdx =
435 elemCtx.problem().plmixnumRegionIndex(elemCtx, scvIdx, timeIdx);
436 return params_.plyvmhCoefficients_[polymerMixRegionIdx];
439 static bool hasPlyshlog()
440 {
return params_.hasPlyshlog_; }
442 static bool hasShrate()
443 {
return params_.hasShrate_; }
445 static Scalar shrate(
unsigned pvtnumRegionIdx)
446 {
return params_.shrate_[pvtnumRegionIdx]; }
454 template <
class Evaluation>
456 unsigned pvtnumRegionIdx,
457 const Evaluation& v0)
459 using ToolboxLocal = MathToolbox<Evaluation>;
461 const auto& viscosityMultiplierTable = params_.plyviscViscosityMultiplierTable_[pvtnumRegionIdx];
462 const Scalar viscosityMultiplier =
463 viscosityMultiplierTable.eval(scalarValue(polymerConcentration),
true);
465 const Scalar eps = 1e-14;
467 if (std::abs((viscosityMultiplier - 1.0)) < eps) {
468 return ToolboxLocal::createConstant(v0, 1.0);
471 const std::vector<Scalar>& shearEffectRefLogVelocity =
472 params_.plyshlogShearEffectRefLogVelocity_[pvtnumRegionIdx];
473 const auto v0AbsLog = log(abs(v0));
475 if (v0AbsLog < shearEffectRefLogVelocity[0]) {
476 return ToolboxLocal::createConstant(v0, 1.0);
483 const std::vector<Scalar>& shearEffectRefMultiplier =
484 params_.plyshlogShearEffectRefMultiplier_[pvtnumRegionIdx];
485 const std::size_t numTableEntries = shearEffectRefLogVelocity.size();
486 assert(shearEffectRefMultiplier.size() == numTableEntries);
488 std::vector<Scalar> shearEffectMultiplier(numTableEntries, 1.0);
489 for (std::size_t i = 0; i < numTableEntries; ++i) {
490 shearEffectMultiplier[i] = (1.0 + (viscosityMultiplier - 1.0) *
491 shearEffectRefMultiplier[i]) / viscosityMultiplier;
492 shearEffectMultiplier[i] = log(shearEffectMultiplier[i]);
496 const TabulatedFunction logShearEffectMultiplier =
497 TabulatedFunction(numTableEntries, shearEffectRefLogVelocity,
498 shearEffectMultiplier,
false);
505 auto F = [&logShearEffectMultiplier, &v0AbsLog](
const Evaluation& u) {
506 return u + logShearEffectMultiplier.eval(u,
true) - v0AbsLog;
509 auto dF = [&logShearEffectMultiplier](
const Evaluation& u) {
510 return 1 + logShearEffectMultiplier.evalDerivative(u,
true);
516 bool converged =
false;
518 for (
int i = 0; i < 20; ++i) {
520 const auto df = dF(u);
522 if (std::abs(scalarValue(f)) < 1e-12) {
528 throw std::runtime_error(
"Not able to compute shear velocity. \n");
532 return exp(logShearEffectMultiplier.eval(u,
true));
535 Scalar molarMass()
const 539 static BlackOilPolymerParams<Scalar> params_;
542 template <
class TypeTag>
543 BlackOilPolymerParams<typename BlackOilPolymerModule<TypeTag, true>::Scalar>
544 BlackOilPolymerModule<TypeTag, true>::params_;
553 template <
class TypeTag>
568 static constexpr
unsigned polymerConcentrationIdx = Indices::polymerConcentrationIdx;
569 static constexpr
int waterPhaseIdx = FluidSystem::waterPhaseIdx;
570 static constexpr
bool enablePolymerMolarWeight = getPropValue<TypeTag, Properties::EnablePolymerMW>();
571 static constexpr
unsigned polymerMoleWeightIdx = Indices::polymerMoleWeightIdx;
583 const auto linearizationType = elemCtx.linearizationType();
584 const PrimaryVariables& priVars = elemCtx.primaryVars(dofIdx, timeIdx);
585 polymerConcentration_ = priVars.makeEvaluation(polymerConcentrationIdx, timeIdx, linearizationType);
586 if constexpr (enablePolymerMolarWeight) {
587 polymerMoleWeight_ = priVars.makeEvaluation(polymerMoleWeightIdx, timeIdx, linearizationType);
591 const Scalar& maxAdsorbtion = PolymerModule::plyrockMaxAdsorbtion(elemCtx, dofIdx, timeIdx);
592 const auto& plyadsAdsorbedPolymer = PolymerModule::plyadsAdsorbedPolymer(elemCtx, dofIdx, timeIdx);
593 polymerAdsorption_ = plyadsAdsorbedPolymer.eval(polymerConcentration_,
true);
594 if (static_cast<int>(PolymerModule::plyrockAdsorbtionIndex(elemCtx, dofIdx, timeIdx)) ==
597 const auto maxPolymerAdsorption =
598 elemCtx.problem().maxPolymerAdsorption(elemCtx, dofIdx, timeIdx);
599 polymerAdsorption_ = std::max(Evaluation(maxPolymerAdsorption), polymerAdsorption_);
603 const Scalar& residualResistanceFactor =
604 PolymerModule::plyrockResidualResistanceFactor(elemCtx, dofIdx, timeIdx);
605 const Evaluation resistanceFactor = 1.0 + (residualResistanceFactor - 1.0) *
606 polymerAdsorption_ / maxAdsorbtion;
609 if constexpr (!enablePolymerMolarWeight) {
610 const Scalar cmax = PolymerModule::plymaxMaxConcentration(elemCtx, dofIdx, timeIdx);
611 const auto& fs = asImp_().fluidState_;
612 const Evaluation& muWater = fs.viscosity(waterPhaseIdx);
613 const auto& viscosityMultiplier =
614 PolymerModule::plyviscViscosityMultiplierTable(elemCtx, dofIdx, timeIdx);
615 const Evaluation viscosityMixture =
616 viscosityMultiplier.eval(polymerConcentration_,
true) * muWater;
619 const Scalar plymixparToddLongstaff = PolymerModule::plymixparToddLongstaff(elemCtx, dofIdx, timeIdx);
620 const Evaluation viscosityPolymer = viscosityMultiplier.eval(cmax,
true) * muWater;
621 const Evaluation viscosityPolymerEffective =
622 pow(viscosityMixture, plymixparToddLongstaff) * pow(viscosityPolymer, 1.0 - plymixparToddLongstaff);
623 const Evaluation viscosityWaterEffective =
624 pow(viscosityMixture, plymixparToddLongstaff) * pow(muWater, 1.0 - plymixparToddLongstaff);
626 const Evaluation cbar = polymerConcentration_ / cmax;
628 waterViscosityCorrection_ = muWater * ((1.0 - cbar) / viscosityWaterEffective + cbar / viscosityPolymerEffective);
630 polymerViscosityCorrection_ = (muWater / waterViscosityCorrection_) / viscosityPolymerEffective;
633 const auto& plyvmhCoefficients = PolymerModule::plyvmhCoefficients(elemCtx, dofIdx, timeIdx);
634 const Scalar k_mh = plyvmhCoefficients.k_mh;
635 const Scalar a_mh = plyvmhCoefficients.a_mh;
636 const Scalar gamma = plyvmhCoefficients.gamma;
637 const Scalar kappa = plyvmhCoefficients.kappa;
641 const Evaluation intrinsicViscosity = k_mh * pow(polymerMoleWeight_ * 1000., a_mh);
642 const Evaluation x = polymerConcentration_ * intrinsicViscosity;
643 waterViscosityCorrection_ = 1.0 / (1.0 + gamma * (x + kappa * x * x));
644 polymerViscosityCorrection_ = 1.0;
648 asImp_().mobility_[waterPhaseIdx] *= waterViscosityCorrection_ / resistanceFactor;
651 polymerDeadPoreVolume_ = PolymerModule::plyrockDeadPoreVolume(elemCtx, dofIdx, timeIdx);
652 polymerRockDensity_ = PolymerModule::plyrockRockDensityFactor(elemCtx, dofIdx, timeIdx);
655 const Evaluation& polymerConcentration()
const 656 {
return polymerConcentration_; }
658 const Evaluation& polymerMoleWeight()
const 660 if constexpr (enablePolymerMolarWeight) {
661 return polymerMoleWeight_;
664 throw std::logic_error(
"polymerMoleWeight() is called but polymer milecular weight is disabled");
668 Scalar polymerDeadPoreVolume()
const 669 {
return polymerDeadPoreVolume_; }
671 const Evaluation& polymerAdsorption()
const 672 {
return polymerAdsorption_; }
674 Scalar polymerRockDensity()
const 675 {
return polymerRockDensity_; }
678 const Evaluation& polymerViscosityCorrection()
const 679 {
return polymerViscosityCorrection_; }
682 const Evaluation& waterViscosityCorrection()
const 683 {
return waterViscosityCorrection_; }
686 Implementation& asImp_()
687 {
return *
static_cast<Implementation*
>(
this); }
689 Evaluation polymerConcentration_;
691 Evaluation polymerMoleWeight_;
692 Scalar polymerDeadPoreVolume_;
693 Scalar polymerRockDensity_;
694 Evaluation polymerAdsorption_;
695 Evaluation polymerViscosityCorrection_;
696 Evaluation waterViscosityCorrection_;
706 template <
class TypeTag>
717 static constexpr
unsigned waterPhaseIdx = FluidSystem::waterPhaseIdx;
728 template <
class Dummy =
bool>
734 throw std::runtime_error(
"The extension of the blackoil model for polymers is not yet " 735 "implemented for problems specified using permeabilities.");
748 waterShearFactor_ = 1.0;
749 polymerShearFactor_ = 1.0;
751 if (!PolymerModule::hasPlyshlog()) {
755 const ExtensiveQuantities& extQuants = asImp_();
756 const unsigned upIdx = extQuants.upstreamIndex(waterPhaseIdx);
757 const unsigned interiorDofIdx = extQuants.interiorIndex();
758 const unsigned exteriorDofIdx = extQuants.exteriorIndex();
759 const auto& up = elemCtx.intensiveQuantities(upIdx, timeIdx);
760 const auto& intQuantsIn = elemCtx.intensiveQuantities(interiorDofIdx, timeIdx);
761 const auto& intQuantsEx = elemCtx.intensiveQuantities(exteriorDofIdx, timeIdx);
764 const Evaluation poroAvg = intQuantsIn.porosity() * 0.5 + intQuantsEx.porosity() * 0.5;
765 const unsigned pvtnumRegionIdx = elemCtx.problem().pvtRegionIndex(elemCtx, scvfIdx, timeIdx);
766 const Evaluation& Sw = up.fluidState().saturation(waterPhaseIdx);
767 const unsigned cellIdx = elemCtx.globalSpaceIndex(scvfIdx, timeIdx);
768 const auto& materialLawManager = elemCtx.problem().materialLawManager();
769 const auto& scaledDrainageInfo =
770 materialLawManager->oilWaterScaledEpsInfoDrainage(cellIdx);
771 const Scalar& Swcr = scaledDrainageInfo.Swcr;
774 const Evaluation denom = max(poroAvg * (Sw - Swcr), 1e-12);
775 Evaluation waterVolumeVelocity = extQuants.volumeFlux(waterPhaseIdx) / denom;
778 if (PolymerModule::hasShrate()) {
779 const Evaluation& relWater = up.relativePermeability(waterPhaseIdx);
780 const Scalar trans = elemCtx.problem().transmissibility(elemCtx, interiorDofIdx, exteriorDofIdx);
782 const Scalar faceArea = elemCtx.stencil(timeIdx).interiorFace(scvfIdx).area();
783 const auto dist = elemCtx.pos(interiorDofIdx, timeIdx) - elemCtx.pos(exteriorDofIdx, timeIdx);
785 const Scalar absPerm = trans / faceArea * dist.two_norm();
786 waterVolumeVelocity *=
787 PolymerModule::shrate(pvtnumRegionIdx) * sqrt(poroAvg * Sw / (relWater * absPerm));
788 assert(isfinite(waterVolumeVelocity));
794 PolymerModule::computeShearFactor(up.polymerConcentration(),
796 waterVolumeVelocity);
797 polymerShearFactor_ =
798 PolymerModule::computeShearFactor(up.polymerConcentration(),
800 waterVolumeVelocity * up.polymerViscosityCorrection());
803 const Evaluation& polymerShearFactor()
const 804 {
return polymerShearFactor_; }
806 const Evaluation& waterShearFactor()
const 807 {
return waterShearFactor_; }
810 Implementation& asImp_()
811 {
return *
static_cast<Implementation*
>(
this); }
813 Evaluation polymerShearFactor_;
814 Evaluation waterShearFactor_;
Contains the parameters required to extend the black-oil model by polymer.
typename Properties::Detail::GetPropImpl< TypeTag, Property >::type::type GetPropType
get the type alias defined in the property (equivalent to old macro GET_PROP_TYPE(...))
Definition: propertysystem.hh:233
static Scalar computeUpdateError(const PrimaryVariables &, const EqVector &)
Return how much a Newton-Raphson update is considered an error.
Definition: blackoilpolymermodules.hh:315
static BlackOilPolymerParams< Scalar >::SkprpolyTable & getSkprpolyTable(const int tableNumber)
get the SKPRPOLY table
Definition: blackoilpolymermodules.hh:134
static void registerParameters()
Register all run-time parameters for the black-oil polymer module.
Definition: blackoilpolymermodules.hh:148
Structs needed for tpfalinearizer and its gpuparams struct extracted to be defined in one place that ...
Definition: blackoilbioeffectsmodules.hh:45
static void registerOutputModules(Model &model, Simulator &simulator)
Register all polymer specific VTK and ECL output modules.
Definition: blackoilpolymermodules.hh:156
VTK output module for the black oil model's polymer related quantities.
Contains classes extending the black-oil model.
void updateShearMultipliersPerm(const ElementContext &, unsigned, unsigned)
Method which calculates the shear factor based on flow velocity.
Definition: blackoilpolymermodules.hh:730
VTK output module for the black oil model's polymer related quantities.
Definition: vtkblackoilpolymermodule.hpp:60
Declares the properties required by the black oil model.
Provides the polymer specific extensive quantities to the generic black-oil module's extensive quanti...
Contains the high level supplements required to extend the black oil model by polymer.
Definition: blackoilpolymermodules.hh:65
static void registerParameters()
Register all run-time parameters for the multi-phase VTK output module.
Definition: vtkblackoilpolymermodule.hpp:91
Struct holding the parameters for the BlackOilPolymerModule class.
Definition: blackoilpolymerparams.hpp:43
Provides the volumetric quantities required for the equations needed by the polymers extension of the...
The Opm property system, traits with inheritance.
void polymerPropertiesUpdate_(const ElementContext &elemCtx, unsigned dofIdx, unsigned timeIdx)
Update the intensive properties needed to handle polymers from the primary variables.
Definition: blackoilpolymermodules.hh:579
static Evaluation computeShearFactor(const Evaluation &polymerConcentration, unsigned pvtnumRegionIdx, const Evaluation &v0)
Computes the shear factor.
Definition: blackoilpolymermodules.hh:455
static void setParams(BlackOilPolymerParams< Scalar > &¶ms)
Set parameters.
Definition: blackoilpolymermodules.hh:97
Definition: blackoilpolymerparams.hpp:62
static TabulatedTwoDFunction & getSkprwatTable(const int tableNumber)
get the SKPRWAT table
Definition: blackoilpolymermodules.hh:119
static TabulatedTwoDFunction & getPlymwinjTable(const int tableNumber)
get the PLYMWINJ table
Definition: blackoilpolymermodules.hh:105
void updateShearMultipliers(const ElementContext &elemCtx, unsigned scvfIdx, unsigned timeIdx)
Method which calculates the shear factor based on flow velocity.
Definition: blackoilpolymermodules.hh:744