opm-simulators
blackoilfoammodules.hh
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28 #ifndef EWOMS_BLACK_OIL_FOAM_MODULE_HH
29 #define EWOMS_BLACK_OIL_FOAM_MODULE_HH
30 
31 #include <dune/common/fvector.hh>
32 
33 #include <opm/common/OpmLog/OpmLog.hpp>
34 #include <opm/common/utility/gpuDecorators.hpp>
35 
36 #include <opm/input/eclipse/EclipseState/Phase.hpp>
37 
40 
43 
44 #include <cassert>
45 #include <istream>
46 #include <numbers>
47 #include <ostream>
48 #include <stdexcept>
49 #include <string>
50 
51 namespace Opm {
52 
58 template <class TypeTag, bool enableFoamV = getPropValue<TypeTag, Properties::EnableFoam>()>
60 {
72 
73  using Toolbox = MathToolbox<Evaluation>;
74 
75  using TabulatedFunction = typename BlackOilFoamParams<Scalar>::TabulatedFunction;
76 
77  static constexpr unsigned foamConcentrationIdx = Indices::foamConcentrationIdx;
78  static constexpr unsigned contiFoamEqIdx = Indices::contiFoamEqIdx;
79  static constexpr unsigned gasPhaseIdx = FluidSystem::gasPhaseIdx;
80  static constexpr unsigned waterPhaseIdx = FluidSystem::waterPhaseIdx;
81 
82  static constexpr unsigned enableFoam = enableFoamV;
83 
84  static constexpr unsigned numEq = getPropValue<TypeTag, Properties::NumEq>();
85 
86  enum { enableSolvent = getPropValue<TypeTag, Properties::EnableSolvent>() };
87 
88 public:
90  static void setParams(BlackOilFoamParams<Scalar>&& params)
91  {
92  params_ = params;
93  }
94 
98  static void registerParameters()
99  {}
100 
104  static void registerOutputModules(Model&,
105  Simulator&)
106  {
107  if constexpr (enableFoam) {
108  if (Parameters::Get<Parameters::EnableVtkOutput>()) {
109  OpmLog::warning("VTK output requested, currently unsupported by the foam module.");
110  }
111  }
112  //model.addOutputModule(new VtkBlackOilFoamModule<TypeTag>(simulator));
113  }
114 
115  static bool primaryVarApplies(unsigned pvIdx)
116  {
117  if constexpr (enableFoam) {
118  return pvIdx == foamConcentrationIdx;
119  }
120  else {
121  return false;
122  }
123  }
124 
125  static std::string primaryVarName([[maybe_unused]] unsigned pvIdx)
126  {
127  assert(primaryVarApplies(pvIdx));
128  return "foam_concentration";
129  }
130 
131  static Scalar primaryVarWeight([[maybe_unused]] unsigned pvIdx)
132  {
133  assert(primaryVarApplies(pvIdx));
134 
135  // TODO: it may be beneficial to chose this differently.
136  return static_cast<Scalar>(1.0);
137  }
138 
139  static bool eqApplies(unsigned eqIdx)
140  {
141  if constexpr (enableFoam) {
142  return eqIdx == contiFoamEqIdx;
143  }
144  else {
145  return false;
146  }
147  }
148 
149  static std::string eqName([[maybe_unused]] unsigned eqIdx)
150  {
151  assert(eqApplies(eqIdx));
152 
153  return "conti^foam";
154  }
155 
156  static Scalar eqWeight([[maybe_unused]] unsigned eqIdx)
157  {
158  assert(eqApplies(eqIdx));
159 
160  // TODO: it may be beneficial to chose this differently.
161  return static_cast<Scalar>(1.0);
162  }
163 
164  // must be called after water storage is computed
165  template <class StorageType>
166  OPM_HOST_DEVICE static void addStorage(StorageType& storage,
167  const IntensiveQuantities& intQuants)
168  {
169  using LhsEval = typename StorageType::value_type;
170 
171  if constexpr (enableFoam) {
172  const auto& fs = intQuants.fluidState();
173 
174  LhsEval surfaceVolume = Toolbox::template decay<LhsEval>(intQuants.porosity());
175  if (params_.transport_phase_ == Phase::WATER) {
176  surfaceVolume *= Toolbox::template decay<LhsEval>(fs.saturation(waterPhaseIdx)) *
177  Toolbox::template decay<LhsEval>(fs.invB(waterPhaseIdx));
178  } else if (params_.transport_phase_ == Phase::GAS) {
179  surfaceVolume *= Toolbox::template decay<LhsEval>(fs.saturation(gasPhaseIdx)) *
180  Toolbox::template decay<LhsEval>(fs.invB(gasPhaseIdx));
181  } else if (params_.transport_phase_ == Phase::SOLVENT) {
182  if constexpr (enableSolvent) {
183  surfaceVolume *= Toolbox::template decay<LhsEval>( intQuants.solventSaturation()) *
184  Toolbox::template decay<LhsEval>(intQuants.solventInverseFormationVolumeFactor());
185  }
186  } else {
187  throw std::runtime_error("Transport phase is GAS/WATER/SOLVENT");
188  }
189 
190  // Avoid singular matrix if no gas is present.
191  surfaceVolume = max(surfaceVolume, 1e-10);
192 
193  // Foam/surfactant in free phase.
194  const LhsEval freeFoam = surfaceVolume *
195  Toolbox::template decay<LhsEval>(intQuants.foamConcentration());
196 
197  // Adsorbed foam/surfactant.
198  const LhsEval adsorbedFoam =
199  Toolbox::template decay<LhsEval>(1.0 - intQuants.porosity()) *
200  Toolbox::template decay<LhsEval>(intQuants.foamRockDensity()) *
201  Toolbox::template decay<LhsEval>(intQuants.foamAdsorbed());
202 
203  const LhsEval accumulationFoam = freeFoam + adsorbedFoam;
204  storage[contiFoamEqIdx] += accumulationFoam;
205  }
206  }
207 
208  static void computeFlux([[maybe_unused]] RateVector& flux,
209  [[maybe_unused]] const ElementContext& elemCtx,
210  [[maybe_unused]] unsigned scvfIdx,
211  [[maybe_unused]] unsigned timeIdx)
212  {
213  if constexpr (enableFoam) {
214  const auto& extQuants = elemCtx.extensiveQuantities(scvfIdx, timeIdx);
215  const unsigned inIdx = extQuants.interiorIndex();
216 
217  // The effect of the mobility reduction factor is
218  // incorporated in the mobility for the relevant phase,
219  // so fluxes do not need modification here.
220  switch (transportPhase()) {
221  case Phase::WATER: {
222  const unsigned upIdx = extQuants.upstreamIndex(waterPhaseIdx);
223  const auto& up = elemCtx.intensiveQuantities(upIdx, timeIdx);
224  if (upIdx == inIdx) {
225  flux[contiFoamEqIdx] =
226  extQuants.volumeFlux(waterPhaseIdx) *
227  up.fluidState().invB(waterPhaseIdx) *
228  up.foamConcentration();
229  } else {
230  flux[contiFoamEqIdx] =
231  extQuants.volumeFlux(waterPhaseIdx) *
232  decay<Scalar>(up.fluidState().invB(waterPhaseIdx)) *
233  decay<Scalar>(up.foamConcentration());
234  }
235  break;
236  }
237  case Phase::GAS: {
238  const unsigned upIdx = extQuants.upstreamIndex(gasPhaseIdx);
239  const auto& up = elemCtx.intensiveQuantities(upIdx, timeIdx);
240  if (upIdx == inIdx) {
241  flux[contiFoamEqIdx] =
242  extQuants.volumeFlux(gasPhaseIdx) *
243  up.fluidState().invB(gasPhaseIdx) *
244  up.foamConcentration();
245  } else {
246  flux[contiFoamEqIdx] =
247  extQuants.volumeFlux(gasPhaseIdx) *
248  decay<Scalar>(up.fluidState().invB(gasPhaseIdx)) *
249  decay<Scalar>(up.foamConcentration());
250  }
251  break;
252  }
253  case Phase::SOLVENT:
254  if constexpr (enableSolvent) {
255  const unsigned upIdx = extQuants.solventUpstreamIndex();
256  const auto& up = elemCtx.intensiveQuantities(upIdx, timeIdx);
257  if (upIdx == inIdx) {
258  flux[contiFoamEqIdx] =
259  extQuants.solventVolumeFlux() *
260  up.solventInverseFormationVolumeFactor() *
261  up.foamConcentration();
262  } else {
263  flux[contiFoamEqIdx] =
264  extQuants.solventVolumeFlux() *
265  decay<Scalar>(up.solventInverseFormationVolumeFactor()) *
266  decay<Scalar>(up.foamConcentration());
267  }
268  } else {
269  throw std::runtime_error("Foam transport phase is SOLVENT but SOLVENT is not activated.");
270  }
271  break;
272  default:
273  throw std::runtime_error("Foam transport phase must be GAS/WATER/SOLVENT.");
274  }
275  }
276  }
277 
281  static Scalar computeUpdateError(const PrimaryVariables&,
282  const EqVector&)
283  {
284  // do not consider the change of foam primary variables for convergence
285  // TODO: maybe this should be changed
286  return static_cast<Scalar>(0.0);
287  }
288 
289  template <class DofEntity>
290  static void serializeEntity([[maybe_unused]] const Model& model,
291  [[maybe_unused]] std::ostream& outstream,
292  [[maybe_unused]] const DofEntity& dof)
293  {
294  if constexpr (enableFoam) {
295  const unsigned dofIdx = model.dofMapper().index(dof);
296  const PrimaryVariables& priVars = model.solution(/*timeIdx=*/0)[dofIdx];
297  outstream << priVars[foamConcentrationIdx];
298  }
299  }
300 
301  template <class DofEntity>
302  static void deserializeEntity([[maybe_unused]] Model& model,
303  [[maybe_unused]] std::istream& instream,
304  [[maybe_unused]] const DofEntity& dof)
305  {
306  if constexpr (enableFoam) {
307  const unsigned dofIdx = model.dofMapper().index(dof);
308  PrimaryVariables& priVars0 = model.solution(/*timeIdx=*/0)[dofIdx];
309  PrimaryVariables& priVars1 = model.solution(/*timeIdx=*/1)[dofIdx];
310 
311  instream >> priVars0[foamConcentrationIdx];
312 
313  // set the primary variables for the beginning of the current time step.
314  priVars1[foamConcentrationIdx] = priVars0[foamConcentrationIdx];
315  }
316  }
317 
318  static const Scalar foamRockDensity(const ElementContext& elemCtx,
319  unsigned scvIdx,
320  unsigned timeIdx)
321  {
322  const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
323  return params_.foamRockDensity_[satnumRegionIdx];
324  }
325 
326  static bool foamAllowDesorption(const ElementContext& elemCtx,
327  unsigned scvIdx,
328  unsigned timeIdx)
329  {
330  const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
331  return params_.foamAllowDesorption_[satnumRegionIdx];
332  }
333 
334  static const TabulatedFunction& adsorbedFoamTable(const ElementContext& elemCtx,
335  unsigned scvIdx,
336  unsigned timeIdx)
337  {
338  const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
339  return params_.adsorbedFoamTable_[satnumRegionIdx];
340  }
341 
342  static const TabulatedFunction& gasMobilityMultiplierTable(const ElementContext& elemCtx,
343  unsigned scvIdx,
344  unsigned timeIdx)
345  {
346  const unsigned pvtnumRegionIdx = elemCtx.problem().pvtRegionIndex(elemCtx, scvIdx, timeIdx);
347  return params_.gasMobilityMultiplierTable_[pvtnumRegionIdx];
348  }
349 
350  static const typename BlackOilFoamParams<Scalar>::FoamCoefficients&
351  foamCoefficients(const ElementContext& elemCtx,
352  const unsigned scvIdx,
353  const unsigned timeIdx)
354  {
355  const unsigned satnumRegionIdx = elemCtx.problem().satnumRegionIndex(elemCtx, scvIdx, timeIdx);
356  return params_.foamCoefficients_[satnumRegionIdx];
357  }
358 
359  static Phase transportPhase()
360  { return params_.transport_phase_; }
361 
362 private:
363  static BlackOilFoamParams<Scalar> params_;
364 };
365 
366 template <class TypeTag, bool enableFoam>
367 BlackOilFoamParams<typename BlackOilFoamModule<TypeTag, enableFoam>::Scalar>
368 BlackOilFoamModule<TypeTag, enableFoam>::params_;
369 
370 template <class TypeTag, bool enableFoam>
372 
380 template <class TypeTag>
381 class BlackOilFoamIntensiveQuantities<TypeTag, /*enableFoam=*/true>
382 {
384 
392 
394 
395  enum { enableSolvent = getPropValue<TypeTag, Properties::EnableSolvent>() };
396 
397  static constexpr int foamConcentrationIdx = Indices::foamConcentrationIdx;
398  static constexpr unsigned waterPhaseIdx = FluidSystem::waterPhaseIdx;
399  static constexpr unsigned oilPhaseIdx = FluidSystem::oilPhaseIdx;
400  static constexpr int gasPhaseIdx = FluidSystem::gasPhaseIdx;
401 
402 public:
408  void foamPropertiesUpdate_(const ElementContext& elemCtx,
409  unsigned dofIdx,
410  unsigned timeIdx)
411  {
412  const PrimaryVariables& priVars = elemCtx.primaryVars(dofIdx, timeIdx);
413  foamConcentration_ = priVars.makeEvaluation(foamConcentrationIdx, timeIdx);
414  const auto& fs = asImp_().fluidState_;
415 
416  // Compute gas mobility reduction factor
417  Evaluation mobilityReductionFactor = 1.0;
418  if constexpr (false) {
419  // The functional model is used.
420  // TODO: allow this model.
421  // In order to do this we must allow transport to be in the water phase, not just the gas phase.
422  const auto& foamCoefficients = FoamModule::foamCoefficients(elemCtx, dofIdx, timeIdx);
423 
424  const Scalar fm_mob = foamCoefficients.fm_mob;
425 
426  const Scalar fm_surf = foamCoefficients.fm_surf;
427  const Scalar ep_surf = foamCoefficients.ep_surf;
428 
429  const Scalar fm_oil = foamCoefficients.fm_oil;
430  const Scalar fl_oil = foamCoefficients.fl_oil;
431  const Scalar ep_oil = foamCoefficients.ep_oil;
432 
433  const Scalar fm_dry = foamCoefficients.fm_dry;
434  const Scalar ep_dry = foamCoefficients.ep_dry;
435 
436  const Scalar fm_cap = foamCoefficients.fm_cap;
437  const Scalar ep_cap = foamCoefficients.ep_cap;
438 
439  const Evaluation C_surf = foamConcentration_;
440  const Evaluation Ca = 1e10; // TODO: replace with proper capillary number.
441  const Evaluation S_o = fs.saturation(oilPhaseIdx);
442  const Evaluation S_w = fs.saturation(waterPhaseIdx);
443 
444  const Evaluation F1 = pow(C_surf / fm_surf, ep_surf);
445  const Evaluation F2 = pow((fm_oil - S_o) / (fm_oil - fl_oil), ep_oil);
446  const Evaluation F3 = pow(fm_cap / Ca, ep_cap);
447  const Evaluation F7 = 0.5 + atan(ep_dry * (S_w - fm_dry)) / std::numbers::pi_v<Scalar>;
448 
449  mobilityReductionFactor = 1. / (1. + fm_mob * F1 * F2 * F3 * F7);
450  } else {
451  // The tabular model is used.
452  // Note that the current implementation only includes the effect of foam concentration (FOAMMOB),
453  // and not the optional pressure dependence (FOAMMOBP) or shear dependence (FOAMMOBS).
454  const auto& gasMobilityMultiplier = FoamModule::gasMobilityMultiplierTable(elemCtx, dofIdx, timeIdx);
455  mobilityReductionFactor = gasMobilityMultiplier.eval(foamConcentration_, /* extrapolate = */ true);
456  }
457 
458  // adjust mobility
459  switch (FoamModule::transportPhase()) {
460  case Phase::WATER:
461  asImp_().mobility_[waterPhaseIdx] *= mobilityReductionFactor;
462  break;
463  case Phase::GAS:
464  asImp_().mobility_[gasPhaseIdx] *= mobilityReductionFactor;
465  break;
466  case Phase::SOLVENT:
467  if constexpr (enableSolvent) {
468  asImp_().solventMobility_ *= mobilityReductionFactor;
469  } else {
470  throw std::runtime_error("Foam transport phase is SOLVENT but SOLVENT is not activated.");
471  }
472  break;
473  default:
474  throw std::runtime_error("Foam transport phase must be GAS/WATER/SOLVENT.");
475  }
476 
477  foamRockDensity_ = FoamModule::foamRockDensity(elemCtx, dofIdx, timeIdx);
478 
479  const auto& adsorbedFoamTable = FoamModule::adsorbedFoamTable(elemCtx, dofIdx, timeIdx);
480  foamAdsorbed_ = adsorbedFoamTable.eval(foamConcentration_, /*extrapolate=*/true);
481  if (!FoamModule::foamAllowDesorption(elemCtx, dofIdx, timeIdx)) {
482  throw std::runtime_error("Foam module does not support the 'no desorption' option.");
483  }
484  }
485 
486  const Evaluation& foamConcentration() const
487  { return foamConcentration_; }
488 
489  Scalar foamRockDensity() const
490  { return foamRockDensity_; }
491 
492  const Evaluation& foamAdsorbed() const
493  { return foamAdsorbed_; }
494 
495 protected:
496  Implementation& asImp_()
497  { return *static_cast<Implementation*>(this); }
498 
499  Evaluation foamConcentration_;
500  Scalar foamRockDensity_;
501  Evaluation foamAdsorbed_;
502 };
503 
504 template <class TypeTag>
505 class BlackOilFoamIntensiveQuantities<TypeTag, false>
506 {
510 
511 public:
512  void foamPropertiesUpdate_(const ElementContext&,
513  unsigned,
514  unsigned)
515  {}
516 
517  const Evaluation& foamConcentration() const
518  { throw std::runtime_error("foamConcentration() called but foam is disabled"); }
519 
520  Scalar foamRockDensity() const
521  { throw std::runtime_error("foamRockDensity() called but foam is disabled"); }
522 
523  Scalar foamAdsorbed() const
524  { throw std::runtime_error("foamAdsorbed() called but foam is disabled"); }
525 };
526 
527 } // namespace Opm
528 
529 #endif
static void registerParameters()
Register all run-time parameters for the black-oil foam module.
Definition: blackoilfoammodules.hh:98
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 void registerOutputModules(Model &, Simulator &)
Register all foam specific VTK and ECL output modules.
Definition: blackoilfoammodules.hh:104
Contains the high level supplements required to extend the black oil model to include the effects of ...
Definition: blackoilfoammodules.hh:59
Contains the parameters to extend the black-oil model to include the effects of foam.
This file contains a set of helper functions used by VFPProd / VFPInj.
Definition: blackoilbioeffectsmodules.hh:45
Struct holding the parameters for the BlackoilFoamModule class.
Definition: blackoilfoamparams.hpp:43
Declares the properties required by the black oil model.
Declare the properties used by the infrastructure code of the finite volume discretizations.
void foamPropertiesUpdate_(const ElementContext &elemCtx, unsigned dofIdx, unsigned timeIdx)
Update the intensive properties needed to handle polymers from the primary variables.
Definition: blackoilfoammodules.hh:408
static Scalar computeUpdateError(const PrimaryVariables &, const EqVector &)
Return how much a Newton-Raphson update is considered an error.
Definition: blackoilfoammodules.hh:281
Declare the properties used by the infrastructure code of the finite volume discretizations.
Provides the volumetric quantities required for the equations needed by the polymers extension of the...
Definition: blackoilfoammodules.hh:371
static void setParams(BlackOilFoamParams< Scalar > &&params)
Set parameters.
Definition: blackoilfoammodules.hh:90