opm-common
LiveOilPvt.hpp
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3 /*
4  This file is part of the Open Porous Media project (OPM).
5 
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19  Consult the COPYING file in the top-level source directory of this
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27 #ifndef OPM_LIVE_OIL_PVT_HPP
28 #define OPM_LIVE_OIL_PVT_HPP
29 
31 #include <opm/common/OpmLog/OpmLog.hpp>
32 
36 
37 namespace Opm {
38 
39 class EclipseState;
40 class Schedule;
41 class SimpleTable;
42 
47 template <class Scalar>
49 {
50  using SamplingPoints = std::vector<std::pair<Scalar, Scalar>>;
51 
52 public:
55 
59  void initFromState(const EclipseState& eclState, const Schedule& schedule);
60 
61 private:
62  void extendPvtoTable_(unsigned regionIdx,
63  unsigned xIdx,
64  const SimpleTable& curTable,
65  const SimpleTable& masterTable);
66 
67 public:
68  void setNumRegions(size_t numRegions);
69 
70  void setVapPars(const Scalar, const Scalar par2)
71  {
72  vapPar2_ = par2;
73  }
74 
78  void setReferenceDensities(unsigned regionIdx,
79  Scalar rhoRefOil,
80  Scalar rhoRefGas,
81  Scalar /*rhoRefWater*/);
82 
89  void setSaturatedOilGasDissolutionFactor(unsigned regionIdx,
90  const SamplingPoints& samplePoints)
91  { saturatedGasDissolutionFactorTable_[regionIdx].setContainerOfTuples(samplePoints); }
92 
102  void setSaturatedOilFormationVolumeFactor(unsigned regionIdx,
103  const SamplingPoints& samplePoints);
104 
117  void setInverseOilFormationVolumeFactor(unsigned regionIdx,
118  const TabulatedTwoDFunction& invBo)
119  { inverseOilBTable_[regionIdx] = invBo; }
120 
126  void setOilViscosity(unsigned regionIdx, const TabulatedTwoDFunction& muo)
127  { oilMuTable_[regionIdx] = muo; }
128 
136  void setSaturatedOilViscosity(unsigned regionIdx,
137  const SamplingPoints& samplePoints);
138 
142  void initEnd();
143 
147  unsigned numRegions() const
148  { return inverseOilBMuTable_.size(); }
149 
153  template <class Evaluation>
154  Evaluation internalEnergy(unsigned,
155  const Evaluation&,
156  const Evaluation&,
157  const Evaluation&) const
158  {
159  throw std::runtime_error("Requested the enthalpy of oil but the thermal "
160  "option is not enabled");
161  }
162 
163  Scalar hVap(unsigned) const
164  {
165  throw std::runtime_error("Requested the hvap of oil but the thermal "
166  "option is not enabled");
167  }
168 
172  template <class Evaluation>
173  Evaluation viscosity(unsigned regionIdx,
174  const Evaluation& /*temperature*/,
175  const Evaluation& pressure,
176  const Evaluation& Rs) const
177  {
178  // ATTENTION: Rs is the first axis!
179  const Evaluation& invBo = inverseOilBTable_[regionIdx].eval(Rs, pressure, /*extrapolate=*/true);
180  const Evaluation& invMuoBo = inverseOilBMuTable_[regionIdx].eval(Rs, pressure, /*extrapolate=*/true);
181 
182  return invBo / invMuoBo;
183  }
184 
188  template <class Evaluation>
189  Evaluation saturatedViscosity(unsigned regionIdx,
190  const Evaluation& /*temperature*/,
191  const Evaluation& pressure) const
192  {
193  // ATTENTION: Rs is the first axis!
194  const Evaluation& invBo = inverseSaturatedOilBTable_[regionIdx].eval(pressure, /*extrapolate=*/true);
195  const Evaluation& invMuoBo = inverseSaturatedOilBMuTable_[regionIdx].eval(pressure, /*extrapolate=*/true);
196 
197  return invBo / invMuoBo;
198  }
199 
203  template <class Evaluation>
204  Evaluation inverseFormationVolumeFactor(unsigned regionIdx,
205  const Evaluation& /*temperature*/,
206  const Evaluation& pressure,
207  const Evaluation& Rs) const
208  {
209  // ATTENTION: Rs is represented by the _first_ axis!
210  return inverseOilBTable_[regionIdx].eval(Rs, pressure, /*extrapolate=*/true);
211  }
212 
216  template <class FluidState, class LhsEval = typename FluidState::ValueType>
217  std::pair<LhsEval, LhsEval>
218  inverseFormationVolumeFactorAndViscosity(const FluidState& fluidState, unsigned regionIdx)
219  {
220  const LhsEval& p = decay<LhsEval>(fluidState.pressure(FluidState::oilPhaseIdx));
221  const LhsEval& Rs = decay<LhsEval>(fluidState.Rs());
222 
223  const auto satSegIdx = this->saturatedGasDissolutionFactorTable_[regionIdx].findSegmentIndex(p, /*extrapolate=*/ true);
224  const auto RsSat = this->saturatedGasDissolutionFactorTable_[regionIdx].eval(p, SegmentIndex{satSegIdx});
225  const bool useSaturatedTables = (fluidState.saturation(FluidState::gasPhaseIdx) > 0.0) && (Rs >= (1.0 - 1e-10) * RsSat);
226 
227  if (useSaturatedTables) {
228  const LhsEval b = this->inverseSaturatedOilBTable_[regionIdx].eval(p, SegmentIndex{satSegIdx});
229  const LhsEval invBMu = this->inverseSaturatedOilBMuTable_[regionIdx].eval(p, SegmentIndex{satSegIdx});
230  const LhsEval mu = b / invBMu;
231  return { b, mu };
232  } else {
233  unsigned ii, jj1, jj2;
234  LhsEval alpha, beta1, beta2;
235  this->inverseOilBTable_[regionIdx].findPoints(ii, jj1, jj2, alpha, beta1, beta2, Rs, p, /*extrapolate =*/ true);
236  const LhsEval b = this->inverseOilBTable_[regionIdx].eval(ii, jj1, jj2, alpha, beta1, beta2);
237  const LhsEval invBMu = this->inverseOilBMuTable_[regionIdx].eval(ii, jj1, jj2, alpha, beta1, beta2);
238  const LhsEval mu = b / invBMu;
239  return { b, mu };
240  }
241  }
242 
246  template <class Evaluation>
247  Evaluation saturatedInverseFormationVolumeFactor(unsigned regionIdx,
248  const Evaluation& /*temperature*/,
249  const Evaluation& pressure) const
250  {
251  // ATTENTION: Rs is represented by the _first_ axis!
252  return inverseSaturatedOilBTable_[regionIdx].eval(pressure, /*extrapolate=*/true);
253  }
254 
258  template <class Evaluation>
259  Evaluation saturatedGasDissolutionFactor(unsigned regionIdx,
260  const Evaluation& /*temperature*/,
261  const Evaluation& pressure) const
262  { return saturatedGasDissolutionFactorTable_[regionIdx].eval(pressure, /*extrapolate=*/true); }
263 
271  template <class Evaluation>
272  Evaluation saturatedGasDissolutionFactor(unsigned regionIdx,
273  const Evaluation& /*temperature*/,
274  const Evaluation& pressure,
275  const Evaluation& oilSaturation,
276  Evaluation maxOilSaturation) const
277  {
278  Evaluation tmp =
279  saturatedGasDissolutionFactorTable_[regionIdx].eval(pressure, /*extrapolate=*/true);
280 
281  // apply the vaporization parameters for the gas phase (cf. the Eclipse VAPPARS
282  // keyword)
283  maxOilSaturation = min(maxOilSaturation, Scalar(1.0));
284  if (vapPar2_ > 0.0 && maxOilSaturation > 0.01 && oilSaturation < maxOilSaturation) {
285  constexpr const Scalar eps = 0.001;
286  const Evaluation& So = max(oilSaturation, eps);
287  tmp *= max(1e-3, pow(So / maxOilSaturation, vapPar2_));
288  }
289 
290  return tmp;
291  }
292 
300  template <class Evaluation>
301  Evaluation saturationPressure(unsigned regionIdx,
302  const Evaluation&,
303  const Evaluation& Rs) const
304  {
305  using Toolbox = MathToolbox<Evaluation>;
306 
307  const auto& RsTable = saturatedGasDissolutionFactorTable_[regionIdx];
308  constexpr const Scalar eps = std::numeric_limits<typename Toolbox::Scalar>::epsilon() * 1e6;
309 
310  // use the saturation pressure function to get a pretty good initial value
311  Evaluation pSat = saturationPressure_[regionIdx].eval(Rs, /*extrapolate=*/true);
312 
313  // Newton method to do the remaining work. If the initial
314  // value is good, this should only take two to three
315  // iterations...
316  bool onProbation = false;
317  for (int i = 0; i < 20; ++i) {
318  const Evaluation& f = RsTable.eval(pSat, /*extrapolate=*/true) - Rs;
319  const Evaluation& fPrime = RsTable.evalDerivative(pSat, /*extrapolate=*/true);
320 
321  // If the derivative is "zero" Newton will not converge,
322  // so simply return our initial guess.
323  if (std::abs(scalarValue(fPrime)) < 1.0e-30) {
324  return pSat;
325  }
326 
327  const Evaluation& delta = f / fPrime;
328 
329  pSat -= delta;
330 
331  if (pSat < 0.0) {
332  // if the pressure is lower than 0 Pascals, we set it back to 0. if this
333  // happens twice, we give up and just return 0 Pa...
334  if (onProbation) {
335  return 0.0;
336  }
337 
338  onProbation = true;
339  pSat = 0.0;
340  }
341 
342  if (std::abs(scalarValue(delta)) < std::abs(scalarValue(pSat))*eps) {
343  return pSat;
344  }
345  }
346 
347  const std::string msg =
348  "Finding saturation pressure did not converge: "
349  " pSat = " + std::to_string(getValue(pSat)) +
350  ", Rs = " + std::to_string(getValue(Rs));
351  OpmLog::debug("Live oil saturation pressure", msg);
352  throw NumericalProblem(msg);
353  }
354 
355  template <class Evaluation>
356  Evaluation diffusionCoefficient(const Evaluation& /*temperature*/,
357  const Evaluation& /*pressure*/,
358  unsigned /*compIdx*/) const
359  {
360  throw std::runtime_error("Not implemented: The PVT model does not provide "
361  "a diffusionCoefficient()");
362  }
363 
364  Scalar gasReferenceDensity(unsigned regionIdx) const
365  { return gasReferenceDensity_[regionIdx]; }
366 
367  Scalar oilReferenceDensity(unsigned regionIdx) const
368  { return oilReferenceDensity_[regionIdx]; }
369 
370  const std::vector<TabulatedTwoDFunction>& inverseOilBTable() const
371  { return inverseOilBTable_; }
372 
373  const std::vector<TabulatedTwoDFunction>& oilMuTable() const
374  { return oilMuTable_; }
375 
376  const std::vector<TabulatedTwoDFunction>& inverseOilBMuTable() const
377  { return inverseOilBMuTable_; }
378 
379  const std::vector<TabulatedOneDFunction>& saturatedOilMuTable() const
380  { return saturatedOilMuTable_; }
381 
382  const std::vector<TabulatedOneDFunction>& inverseSaturatedOilBTable() const
383  { return inverseSaturatedOilBTable_; }
384 
385  const std::vector<TabulatedOneDFunction>& inverseSaturatedOilBMuTable() const
386  { return inverseSaturatedOilBMuTable_; }
387 
388  const std::vector<TabulatedOneDFunction>& saturatedGasDissolutionFactorTable() const
389  { return saturatedGasDissolutionFactorTable_; }
390 
391  const std::vector<TabulatedOneDFunction>& saturationPressure() const
392  { return saturationPressure_; }
393 
394  Scalar vapPar2() const
395  { return vapPar2_; }
396 
397 private:
398  void updateSaturationPressure_(unsigned regionIdx);
399 
400  std::vector<Scalar> gasReferenceDensity_{};
401  std::vector<Scalar> oilReferenceDensity_{};
402  std::vector<TabulatedTwoDFunction> inverseOilBTable_{};
403  std::vector<TabulatedTwoDFunction> oilMuTable_{};
404  std::vector<TabulatedTwoDFunction> inverseOilBMuTable_{};
405  std::vector<TabulatedOneDFunction> saturatedOilMuTable_{};
406  std::vector<TabulatedOneDFunction> inverseSaturatedOilBTable_{};
407  std::vector<TabulatedOneDFunction> inverseSaturatedOilBMuTable_{};
408  std::vector<TabulatedOneDFunction> saturatedGasDissolutionFactorTable_{};
409  std::vector<TabulatedOneDFunction> saturationPressure_{};
410 
411  Scalar vapPar2_ = 0.0;
412 };
413 
414 } // namespace Opm
415 
416 #endif
void initFromState(const EclipseState &eclState, const Schedule &schedule)
Initialize the oil parameters via the data specified by the PVTO ECL keyword.
Definition: LiveOilPvt.cpp:40
Evaluation saturationPressure(unsigned regionIdx, const Evaluation &, const Evaluation &Rs) const
Returns the saturation pressure of the oil phase [Pa] depending on its mass fraction of the gas compo...
Definition: LiveOilPvt.hpp:301
Definition: Exceptions.hpp:39
Evaluation viscosity(unsigned regionIdx, const Evaluation &, const Evaluation &pressure, const Evaluation &Rs) const
Returns the dynamic viscosity [Pa s] of the fluid phase given a set of parameters.
Definition: LiveOilPvt.hpp:173
A traits class which provides basic mathematical functions for arbitrary scalar floating point values...
Implements a scalar function that depends on two variables and which is sampled uniformly in the X di...
Evaluation saturatedInverseFormationVolumeFactor(unsigned regionIdx, const Evaluation &, const Evaluation &pressure) const
Returns the formation volume factor [-] of the fluid phase.
Definition: LiveOilPvt.hpp:247
Definition: Schedule.hpp:100
Provides the OPM specific exception classes.
void setOilViscosity(unsigned regionIdx, const TabulatedTwoDFunction &muo)
Initialize the viscosity of the oil phase.
Definition: LiveOilPvt.hpp:126
std::pair< LhsEval, LhsEval > inverseFormationVolumeFactorAndViscosity(const FluidState &fluidState, unsigned regionIdx)
Returns the formation volume factor [-] and viscosity [Pa s] of the fluid phase.
Definition: LiveOilPvt.hpp:218
unsigned numRegions() const
Return the number of PVT regions which are considered by this PVT-object.
Definition: LiveOilPvt.hpp:147
Evaluation inverseFormationVolumeFactor(unsigned regionIdx, const Evaluation &, const Evaluation &pressure, const Evaluation &Rs) const
Returns the formation volume factor [-] of the fluid phase.
Definition: LiveOilPvt.hpp:204
Implements a scalar function that depends on two variables and which is sampled uniformly in the X di...
Definition: UniformXTabulated2DFunction.hpp:54
This class implements a small container which holds the transmissibility mulitpliers for all the face...
Definition: Exceptions.hpp:30
void initEnd()
Finish initializing the oil phase PVT properties.
Definition: LiveOilPvt.cpp:296
Definition: EclipseState.hpp:66
Definition: SimpleTable.hpp:35
Evaluation internalEnergy(unsigned, const Evaluation &, const Evaluation &, const Evaluation &) const
Returns the specific enthalpy [J/kg] of oil given a set of parameters.
Definition: LiveOilPvt.hpp:154
This class represents the Pressure-Volume-Temperature relations of the oil phas with dissolved gas...
Definition: LiveOilPvt.hpp:48
Evaluation saturatedGasDissolutionFactor(unsigned regionIdx, const Evaluation &, const Evaluation &pressure) const
Returns the gas dissolution factor [m^3/m^3] of the oil phase.
Definition: LiveOilPvt.hpp:259
void setReferenceDensities(unsigned regionIdx, Scalar rhoRefOil, Scalar rhoRefGas, Scalar)
Initialize the reference densities of all fluids for a given PVT region.
Definition: LiveOilPvt.cpp:231
void setSaturatedOilViscosity(unsigned regionIdx, const SamplingPoints &samplePoints)
Initialize the phase viscosity for gas saturated oil.
Definition: LiveOilPvt.cpp:269
void setSaturatedOilFormationVolumeFactor(unsigned regionIdx, const SamplingPoints &samplePoints)
Initialize the function for the oil formation volume factor.
Definition: LiveOilPvt.cpp:242
void setSaturatedOilGasDissolutionFactor(unsigned regionIdx, const SamplingPoints &samplePoints)
Initialize the function for the gas dissolution factor .
Definition: LiveOilPvt.hpp:89
Definition: MathToolbox.hpp:50
void setInverseOilFormationVolumeFactor(unsigned regionIdx, const TabulatedTwoDFunction &invBo)
Initialize the function for the oil formation volume factor.
Definition: LiveOilPvt.hpp:117
Implements a linearly interpolated scalar function that depends on one variable.
Implements a linearly interpolated scalar function that depends on one variable.
Definition: Tabulated1DFunction.hpp:50
Definition: Tabulated1DFunction.hpp:41
Evaluation saturatedGasDissolutionFactor(unsigned regionIdx, const Evaluation &, const Evaluation &pressure, const Evaluation &oilSaturation, Evaluation maxOilSaturation) const
Returns the gas dissolution factor [m^3/m^3] of the oil phase.
Definition: LiveOilPvt.hpp:272
Evaluation saturatedViscosity(unsigned regionIdx, const Evaluation &, const Evaluation &pressure) const
Returns the dynamic viscosity [Pa s] of the fluid phase given a set of parameters.
Definition: LiveOilPvt.hpp:189