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SimpleHuDuanH2O.hpp
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1// -*- mode: C++; tab-width: 4; indent-tabs-mode: nil; c-basic-offset: 4 -*-
2// vi: set et ts=4 sw=4 sts=4:
3/*
4 This file is part of the Open Porous Media project (OPM).
5
6 OPM is free software: you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation, either version 2 of the License, or
9 (at your option) any later version.
10
11 OPM is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with OPM. If not, see <http://www.gnu.org/licenses/>.
18
19 Consult the COPYING file in the top-level source directory of this
20 module for the precise wording of the license and the list of
21 copyright holders.
22*/
27#ifndef OPM_SIMPLE_HU_DUAN_H2O_HPP
28#define OPM_SIMPLE_HU_DUAN_H2O_HPP
29
30#include "Component.hpp"
31#include "iapws/Common.hpp"
32
34#include <opm/common/TimingMacros.hpp>
35#include <opm/common/OpmLog/OpmLog.hpp>
36
39
40#include <cassert>
41#include <cmath>
42#include <string_view>
43
44namespace Opm {
45
64template <class Scalar>
65class SimpleHuDuanH2O : public Component<Scalar, SimpleHuDuanH2O<Scalar>>
66{
67 using IdealGas = ::Opm::IdealGas<Scalar>;
68 using Common = IAPWS::Common<Scalar>;
69
70 static constexpr Scalar R = Constants<Scalar>::R / 18e-3; // specific gas constant of water
71
72public:
73 // OPM_HOST_DEVICE static Scalar R_()
74 // { return Scalar(R); }
75
79 OPM_HOST_DEVICE static std::string_view name()
80 { return "H2O"; }
81
85 OPM_HOST_DEVICE static bool gasIsCompressible()
86 { return true; }
87
91 OPM_HOST_DEVICE static bool liquidIsCompressible()
92 { return false; }
93
97 OPM_HOST_DEVICE static bool gasIsIdeal()
98 { return true; }
99
103 OPM_HOST_DEVICE static Scalar molarMass()
104 { return 18e-3; }
105
109 OPM_HOST_DEVICE static Scalar criticalTemperature()
110 { return 647.096; /* [K] */ }
111
115 OPM_HOST_DEVICE static Scalar criticalPressure()
116 { return 22.064e6; /* [N/m^2] */ }
117
121 OPM_HOST_DEVICE static Scalar tripleTemperature()
122 { return 273.16; /* [K] */ }
123
127 OPM_HOST_DEVICE static Scalar triplePressure()
128 { return 611.657; /* [N/m^2] */ }
129
142 template <class Evaluation>
143 OPM_HOST_DEVICE static Evaluation vaporPressure(const Evaluation& T)
144 {
145
146 OPM_TIMEFUNCTION_LOCAL(Subsystem::PvtProps);
147 if (T > criticalTemperature())
148 return criticalPressure();
149 if (T < tripleTemperature())
150 return 0; // water is solid: We don't take sublimation into account
151
152 static constexpr Scalar n[10] = {
153 0.11670521452767e4, -0.72421316703206e6, -0.17073846940092e2,
154 0.12020824702470e5, -0.32325550322333e7, 0.14915108613530e2,
155 -0.48232657361591e4, 0.40511340542057e6, -0.23855557567849,
156 0.65017534844798e3
157 };
158
159 Evaluation sigma = T + n[8]/(T - n[9]);
160
161 Evaluation A = (sigma + n[0])*sigma + n[1];
162 Evaluation B = (n[2]*sigma + n[3])*sigma + n[4];
163 Evaluation C = (n[5]*sigma + n[6])*sigma + n[7];
164
165 Evaluation tmp = 2.0*C/(sqrt(B*B - 4.0*A*C) - B);
166 tmp *= tmp;
167 tmp *= tmp;
168
169 return 1e6*tmp;
170 }
171
178 template <class Evaluation>
179 OPM_HOST_DEVICE static Evaluation gasEnthalpy(const Evaluation& temperature,
180 const Evaluation& /*pressure*/)
181 { return 1.976e3*temperature + 40.65e3/molarMass(); }
182
183
187 template <class Evaluation>
188 OPM_HOST_DEVICE static Evaluation gasHeatCapacity(const Evaluation&,
189 const Evaluation&)
190 { return 1.976e3; }
191
201 template <class Evaluation>
202 OPM_HOST_DEVICE static Evaluation liquidEnthalpy(const Evaluation& temperature,
203 const Evaluation& /*pressure*/)
204 { return (temperature - 288.71) * (4.18060737e+03 + 8.64644981e-02 * (temperature - 288.71)); }
205
209 template <class Evaluation>
210 OPM_HOST_DEVICE static Evaluation liquidHeatCapacity(const Evaluation&,
211 const Evaluation&)
212 { return 4.184e3; }
213
227 template <class Evaluation>
228 OPM_HOST_DEVICE static Evaluation gasInternalEnergy(const Evaluation& temperature,
229 const Evaluation& pressure)
230 {
231 return
232 gasEnthalpy(temperature, pressure) -
233 1/molarMass()* // conversion from [J/(mol K)] to [J/(kg K)]
234 IdealGas::R*temperature; // = pressure *spec. volume for an ideal gas
235 }
236
244 template <class Evaluation>
245 OPM_HOST_DEVICE static Evaluation
246 liquidInternalEnergy(const Evaluation& temperature,
247 const Evaluation& pressure,
248 bool extrapolate)
249 {
250 return
251 liquidEnthalpy(temperature, pressure) -
252 pressure/liquidDensity(temperature, pressure, extrapolate);
253 }
254
261 template <class Evaluation>
262 OPM_HOST_DEVICE static Evaluation liquidThermalConductivity(const Evaluation& /*temperature*/,
263 const Evaluation& /*pressure*/)
264 {
265 return 0.578078; // conductivity of liquid water [W / (m K ) ] IAPWS evaluated at p=.1 MPa, T=8°C
266 }
267
274 template <class Evaluation>
275 OPM_HOST_DEVICE static Evaluation gasThermalConductivity(const Evaluation& /*temperature*/,
276 const Evaluation& /*pressure*/)
277 {
278 return 0.028224; // conductivity of steam [W / (m K ) ] IAPWS evaluated at p=.1 MPa, T=8°C
279 }
280
287 template <class Evaluation>
288 OPM_HOST_DEVICE static Evaluation gasDensity(const Evaluation& temperature, const Evaluation& pressure)
289 {
290 // Assume an ideal gas
291 return molarMass()*IdealGas::molarDensity(temperature, pressure);
292 }
293
300 template <class Evaluation>
301 OPM_HOST_DEVICE static Evaluation gasPressure(const Evaluation& temperature, const Evaluation& density)
302 {
303 // Assume an ideal gas
304 return IdealGas::pressure(temperature, density/molarMass());
305 }
306
315 template <class Evaluation>
316 OPM_HOST_DEVICE static Evaluation liquidDensity(const Evaluation& temperature, const Evaluation& pressure,
317 bool extrapolate)
318 {
319 return liquidDensity_(temperature, pressure, extrapolate);
320 }
321
328 template <class Evaluation>
329 OPM_HOST_DEVICE static Evaluation liquidPressure(const Evaluation& /*temperature*/, const Evaluation& /*density*/)
330 {
331#if OPM_IS_INSIDE_DEVICE_FUNCTION
332 assert(false && "The liquid pressure is undefined for incompressible fluids");
333#else
334 throw std::logic_error("The liquid pressure is undefined for incompressible fluids");
335#endif
336 }
337
345 template <class Evaluation>
346 OPM_HOST_DEVICE static Evaluation gasViscosity(const Evaluation& /*temperature*/,
347 const Evaluation& /*pressure*/)
348 {
349 return 1e-05;
350 }
351
360 template <class Evaluation>
361 OPM_HOST_DEVICE static Evaluation liquidViscosity(const Evaluation& temperature, const Evaluation& pressure,
362 bool extrapolate)
363 {
364 if (temperature > 570) {
365// This preprocessing statement loses this warning message
366// But printing it possibly thousands of times inside a gpu function also seems problematic
367#if !OPM_IS_INSIDE_DEVICE_FUNCTION
368 const std::string msg =
369 "Viscosity of water based on Hu et al is too "
370 "different from IAPWS for T above 570K and (T = " +
371 std::to_string(getValue(temperature)) + ")";
372 if (extrapolate)
373 {
374 OpmLog::warning(msg);
375 }
376 else
377 throw NumericalProblem(msg);
378#else
379 // no warning on the GPU when using extrapolate is somewhat bad,
380 // but how does one tame warning output when encountered by thousands of threads?
381 if (!extrapolate) {
382 assert(false && "Viscosity of water based on Hu et al is too different from IAPWS for T above 570K");
383 }
384#endif
385 }
386
387 const Evaluation rho = liquidDensity(temperature, pressure, extrapolate);
388 return Common::viscosity(temperature, rho);
389 }
390
391private:
392
401 template <class Evaluation>
402 OPM_HOST_DEVICE static Evaluation liquidDensity_(const Evaluation& T, const Evaluation& pressure, bool extrapolate) {
403 // Hu, Duan, Zhu and Chou: PVTx properties of the CO2-H2O and CO2-H2O-NaCl
404 // systems below 647 K: Assessment of experimental data and
405 // thermodynamics models, Chemical Geology, 2007.
406 OPM_TIMEBLOCK_LOCAL(liquidDensity_, Subsystem::PvtProps);
407 if (T > 647 || pressure > 100e6) {
408#if !OPM_IS_INSIDE_DEVICE_FUNCTION
409 const std::string msg =
410 "Density of water is only implemented for temperatures "
411 "below 647K and pressures below 100MPa. (T = " +
412 std::to_string(getValue(T)) + ", p=" +
413 std::to_string(getValue(pressure)) + ")";
414 if (extrapolate)
415 {
416 OpmLog::warning(msg);
417 }
418 else
419 throw NumericalProblem(msg);
420#else
421 // no warning on the GPU when using extrapolate is somewhat bad,
422 // but how does one tame warning output when encountered by thousands of threads?
423 if (!extrapolate) {
424 assert(false && "Density of water is only implemented for temperatures below 647K and pressures below 100MPa");
425 }
426#endif
427 }
428
429 Evaluation p = pressure / 1e6; // to MPa
430 Scalar Mw = molarMass() * 1e3; //kg/kmol
431
432 static constexpr Scalar k0[5] = { 3.27225e-07, -4.20950e-04, 2.32594e-01, -4.16920e+01, 5.71292e+03 };
433 static constexpr Scalar k1[5] = { -2.32306e-10, 2.91138e-07, -1.49662e-04, 3.59860e-02, -3.55071 };
434 static constexpr Scalar k2[3] = { 2.57241e-14, -1.24336e-11, 5.42707e-07 };
435 static constexpr Scalar k3[3] = { -4.42028e-18, 2.10007e-15, -8.11491e-11 };
436 Evaluation k0_eval = 1e-3 * (((k0[0]*T + k0[1])*T + k0[2])*T + k0[3] + k0[4]/T);
437 Evaluation k1_eval = 1e-2 * (((k1[0]*T + k1[1])*T + k1[2])*T + k1[3] + k1[4]/T);
438 Evaluation k2_eval = 1e-1 * ((k2[0]*T + k2[1])*T*T + k2[2]);
439 Evaluation k3_eval = (k3[0]*T + k3[1])*T*T + k3[2];
440
441 // molar volum (m³/kmol):
442 Evaluation vw = ((k3_eval*p + k2_eval)*p + k1_eval)*p + k0_eval;
443
444 // density kg/m3
445 return Mw / vw;
446
447 }
448
449};
450
451} // namespace Opm
452
453#endif
Implements relations which are common for all regions of the IAPWS '97 formulation.
Abstract base class of a pure chemical species.
Provides the OPM specific exception classes.
Relations valid for an ideal gas.
A traits class which provides basic mathematical functions for arbitrary scalar floating point values...
Abstract base class of a pure chemical species.
Definition Component.hpp:44
static constexpr Scalar R
The ideal gas constant [J/(mol K)].
Definition Constants.hpp:47
Implements relations which are common for all regions of the IAPWS '97 formulation.
Definition Common.hpp:56
static OPM_HOST_DEVICE Evaluation viscosity(const Evaluation &temperature, const Evaluation &rho)
The dynamic viscosity of pure water.
Definition Common.hpp:103
Relations valid for an ideal gas.
Definition IdealGas.hpp:39
static OPM_HOST_DEVICE Evaluation pressure(const Evaluation &temperature, const Evaluation &rhoMolar)
The pressure of the gas in , depending on the molar density and temperature.
Definition IdealGas.hpp:59
static OPM_HOST_DEVICE Evaluation molarDensity(const Evaluation &temperature, const Evaluation &pressure)
The molar density of the gas , depending on pressure and temperature.
Definition IdealGas.hpp:68
static constexpr Scalar R
The ideal gas constant .
Definition IdealGas.hpp:42
Definition Exceptions.hpp:40
A simple version of pure water with density from Hu et al.
Definition SimpleHuDuanH2O.hpp:66
static OPM_HOST_DEVICE Evaluation liquidDensity(const Evaluation &temperature, const Evaluation &pressure, bool extrapolate)
The density of pure water at a given pressure and temperature .
Definition SimpleHuDuanH2O.hpp:316
static OPM_HOST_DEVICE Evaluation liquidViscosity(const Evaluation &temperature, const Evaluation &pressure, bool extrapolate)
The dynamic viscosity of pure water.
Definition SimpleHuDuanH2O.hpp:361
static OPM_HOST_DEVICE Evaluation gasDensity(const Evaluation &temperature, const Evaluation &pressure)
The density of steam at a given pressure and temperature.
Definition SimpleHuDuanH2O.hpp:288
static OPM_HOST_DEVICE Evaluation gasHeatCapacity(const Evaluation &, const Evaluation &)
Specific isobaric heat capacity of the component [J/kg] as a gas.
Definition SimpleHuDuanH2O.hpp:188
static OPM_HOST_DEVICE Scalar criticalTemperature()
Returns the critical temperature of water.
Definition SimpleHuDuanH2O.hpp:109
static OPM_HOST_DEVICE Evaluation liquidPressure(const Evaluation &, const Evaluation &)
The pressure of water in at a given density and temperature.
Definition SimpleHuDuanH2O.hpp:329
static OPM_HOST_DEVICE Evaluation gasThermalConductivity(const Evaluation &, const Evaluation &)
Specific heat conductivity of steam .
Definition SimpleHuDuanH2O.hpp:275
static OPM_HOST_DEVICE Evaluation liquidThermalConductivity(const Evaluation &, const Evaluation &)
Specific heat conductivity of liquid water .
Definition SimpleHuDuanH2O.hpp:262
static OPM_HOST_DEVICE Evaluation gasInternalEnergy(const Evaluation &temperature, const Evaluation &pressure)
Specific internal energy of steam .
Definition SimpleHuDuanH2O.hpp:228
static OPM_HOST_DEVICE Evaluation liquidHeatCapacity(const Evaluation &, const Evaluation &)
Specific isobaric heat capacity of the component [J/kg] as a liquid.
Definition SimpleHuDuanH2O.hpp:210
static OPM_HOST_DEVICE Scalar tripleTemperature()
Returns the temperature at water's triple point.
Definition SimpleHuDuanH2O.hpp:121
static OPM_HOST_DEVICE bool liquidIsCompressible()
Returns true iff the liquid phase is assumed to be compressible.
Definition SimpleHuDuanH2O.hpp:91
static OPM_HOST_DEVICE Evaluation gasViscosity(const Evaluation &, const Evaluation &)
The dynamic viscosity of steam.
Definition SimpleHuDuanH2O.hpp:346
static OPM_HOST_DEVICE Scalar molarMass()
The molar mass in of water.
Definition SimpleHuDuanH2O.hpp:103
static OPM_HOST_DEVICE Scalar triplePressure()
Returns the pressure at water's triple point.
Definition SimpleHuDuanH2O.hpp:127
static OPM_HOST_DEVICE Evaluation gasEnthalpy(const Evaluation &temperature, const Evaluation &)
Specific enthalpy of water steam .
Definition SimpleHuDuanH2O.hpp:179
static OPM_HOST_DEVICE bool gasIsCompressible()
Returns true iff the gas phase is assumed to be compressible.
Definition SimpleHuDuanH2O.hpp:85
static OPM_HOST_DEVICE Evaluation vaporPressure(const Evaluation &T)
The vapor pressure in of pure water at a given temperature.
Definition SimpleHuDuanH2O.hpp:143
static OPM_HOST_DEVICE Evaluation liquidInternalEnergy(const Evaluation &temperature, const Evaluation &pressure, bool extrapolate)
Specific internal energy of liquid water .
Definition SimpleHuDuanH2O.hpp:246
static OPM_HOST_DEVICE std::string_view name()
A human readable name for the water.
Definition SimpleHuDuanH2O.hpp:79
static OPM_HOST_DEVICE Scalar criticalPressure()
Returns the critical pressure of water.
Definition SimpleHuDuanH2O.hpp:115
static OPM_HOST_DEVICE bool gasIsIdeal()
Returns true iff the gas phase is assumed to be ideal.
Definition SimpleHuDuanH2O.hpp:97
static OPM_HOST_DEVICE Evaluation gasPressure(const Evaluation &temperature, const Evaluation &density)
The pressure of steam in at a given density and temperature.
Definition SimpleHuDuanH2O.hpp:301
static OPM_HOST_DEVICE Evaluation liquidEnthalpy(const Evaluation &temperature, const Evaluation &)
Specific enthalpy of liquid water .
Definition SimpleHuDuanH2O.hpp:202
This class implements a small container which holds the transmissibility mulitpliers for all the face...
Definition Exceptions.hpp:30