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Brine.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*/
28#ifndef OPM_BRINE_HPP
29#define OPM_BRINE_HPP
30
33
34#include <string_view>
35
36namespace Opm {
37
46template <class Scalar, class H2O>
47class Brine : public Component<Scalar, Brine<Scalar, H2O> >
48{
49public:
51 static Scalar salinity;
52
56 static std::string_view name()
57 { return "Brine"; }
58
62 static bool gasIsIdeal()
63 { return H2O::gasIsIdeal(); }
64
68 static bool gasIsCompressible()
69 { return H2O::gasIsCompressible(); }
70
75 { return H2O::liquidIsCompressible(); }
76
82 static Scalar molarMass()
83 {
84 const Scalar M1 = H2O::molarMass();
85 constexpr Scalar M2 = 58e-3; // molar mass of NaCl [kg/mol]
86 const Scalar X2 = salinity; // mass fraction of salt in brine
87 return M1*M2/(M2 + X2*(M1 - M2));
88 }
89
93 static Scalar criticalTemperature()
94 { return H2O::criticalTemperature(); /* [K] */ }
95
99 static Scalar criticalPressure()
100 { return H2O::criticalPressure(); /* [N/m^2] */ }
101
105 static Scalar criticalVolume()
106 { return H2O::criticalVolume(); /* [m3/kmol] */ }
107
111 static Scalar acentricFactor()
112 { return H2O::acentricFactor(); }
113
117 static Scalar tripleTemperature()
118 { return H2O::tripleTemperature(); /* [K] */ }
119
123 static Scalar triplePressure()
124 { return H2O::triplePressure(); /* [N/m^2] */ }
125
138 template <class Evaluation>
139 static Evaluation vaporPressure(const Evaluation& T)
140 { return H2O::vaporPressure(T); /* [N/m^2] */ }
141
145 template <class Evaluation>
146 static Evaluation gasEnthalpy(const Evaluation& temperature,
147 const Evaluation& pressure)
148 { return H2O::gasEnthalpy(temperature, pressure); /* [J/kg] */ }
149
158 template <class Evaluation>
159 static Evaluation liquidEnthalpy(const Evaluation& temperature,
160 const Evaluation& pressure)
161 {
162 // Numerical coefficents from Palliser and McKibbin
163 static constexpr Scalar f[] = {
164 2.63500e-1, 7.48368e-6, 1.44611e-6, -3.80860e-10
165 };
166
167 // Numerical coefficents from Michaelides for the enthalpy of brine
168 static constexpr Scalar a[4][3] = {
169 { -9633.6, -4080.0, +286.49 },
170 { +166.58, +68.577, -4.6856 },
171 { -0.90963, -0.36524, +0.249667e-1 },
172 { +0.17965e-2, +0.71924e-3, -0.4900e-4 }
173 };
174
175 const Evaluation theta = temperature - 273.15;
176
177 Evaluation S = salinity;
178 const Evaluation S_lSAT =
179 f[0]
180 + f[1]*theta
181 + f[2]*pow(theta, 2)
182 + f[3]*pow(theta, 3);
183
184 // Regularization
185 if (S > S_lSAT)
186 S = S_lSAT;
187
188 const Evaluation hw = H2O::liquidEnthalpy(temperature, pressure)/1e3; // [kJ/kg]
189
190 // From Daubert and Danner
191 const Evaluation h_NaCl =
192 (3.6710e4*temperature
193 + (6.2770e1/2)*temperature*temperature
194 - (6.6670e-2/3)*temperature*temperature*temperature
195 + (2.8000e-5/4)*pow(temperature, 4.0))/58.44e3
196 - 2.045698e+02; // [kJ/kg]
197
198 const Evaluation m = S/(1-S)/58.44e-3;
199
200 Evaluation d_h = 0;
201 for (int i = 0; i<=3; ++i) {
202 for (int j = 0; j <= 2; ++j) {
203 d_h += a[i][j] * pow(theta, i) * pow(m, j);
204 }
205 }
206
207 const Evaluation delta_h = 4.184/(1e3 + (58.44 * m))*d_h;
208
209 // Enthalpy of brine
210 const Evaluation h_ls = (1-S)*hw + S*h_NaCl + S*delta_h; // [kJ/kg]
211 return h_ls*1e3; // convert to [J/kg]
212 }
213
214
218 template <class Evaluation>
219 static Evaluation liquidHeatCapacity(const Evaluation& temperature,
220 const Evaluation& pressure)
221 {
222 Scalar eps = scalarValue(temperature)*1e-8;
223 return (liquidEnthalpy(temperature + eps, pressure) - liquidEnthalpy(temperature, pressure))/eps;
224 }
225
229 template <class Evaluation>
230 static Evaluation gasHeatCapacity(const Evaluation& temperature,
231 const Evaluation& pressure)
232 { return H2O::gasHeatCapacity(temperature, pressure); }
233
237 template <class Evaluation>
238 static Evaluation gasInternalEnergy(const Evaluation& temperature,
239 const Evaluation& pressure)
240 {
241 return
242 gasEnthalpy(temperature, pressure) -
243 pressure/gasDensity(temperature, pressure);
244 }
245
249 template <class Evaluation>
250 static Evaluation liquidInternalEnergy(const Evaluation& temperature,
251 const Evaluation& pressure)
252 {
253 return
254 liquidEnthalpy(temperature, pressure) -
255 pressure/liquidDensity(temperature, pressure);
256 }
257
261 template <class Evaluation>
262 static Evaluation gasDensity(const Evaluation& temperature, const Evaluation& pressure)
263 { return H2O::gasDensity(temperature, pressure); }
264
276 template <class Evaluation>
277 static Evaluation liquidDensity(const Evaluation& temperature,
278 const Evaluation& pressure, bool extrapolate = false)
279 {
280 const Evaluation rhow = H2O::liquidDensity(temperature, pressure, extrapolate);
281 return liquidDensity(temperature, pressure, rhow);
282 }
283
296 template <class Evaluation>
297 static Evaluation liquidDensity(const Evaluation& temperature,
298 const Evaluation& pressure,
299 const Evaluation& rhow)
300 {
301 Evaluation tempC = temperature - 273.15;
302 Evaluation pMPa = pressure/1.0E6;
303 return
304 rhow +
305 1000*salinity*(
306 0.668 +
307 0.44*salinity +
308 1.0E-6*(
309 300*pMPa -
310 2400*pMPa*salinity +
311 tempC*(
312 80.0 +
313 3*tempC -
314 3300*salinity -
315 13*pMPa +
316 47*pMPa*salinity)));
317 }
318
322 template <class Evaluation>
323 static Evaluation gasPressure(const Evaluation& temperature, const Evaluation& density)
324 { return H2O::gasPressure(temperature, density); }
325
329 template <class Evaluation>
330 static Evaluation liquidPressure(const Evaluation& temperature, const Evaluation& density)
331 {
332 // We use the newton method for this. For the initial value we
333 // assume the pressure to be 10% higher than the vapor
334 // pressure
335 Evaluation pressure = 1.1*vaporPressure(temperature);
336 Scalar eps = scalarValue(pressure)*1e-7;
337
338 Evaluation deltaP = pressure*2;
339 for (int i = 0;
340 i < 5
341 && std::abs(scalarValue(pressure)*1e-9) < std::abs(scalarValue(deltaP));
342 ++i)
343 {
344 const Evaluation f = liquidDensity(temperature, pressure) - density;
345
346 Evaluation df_dp = liquidDensity(temperature, pressure + eps);
347 df_dp -= liquidDensity(temperature, pressure - eps);
348 df_dp /= 2*eps;
349
350 deltaP = - f/df_dp;
351
352 pressure += deltaP;
353 }
354
355 return pressure;
356 }
357
361 template <class Evaluation>
362 static Evaluation gasViscosity(const Evaluation& temperature, const Evaluation& pressure)
363 { return H2O::gasViscosity(temperature, pressure); }
364
373 template <class Evaluation>
374 static Evaluation liquidViscosity(const Evaluation& temperature, const Evaluation& /*pressure*/)
375 {
376 Evaluation T_C = temperature - 273.15;
377 if(temperature <= 275.) // regularization
378 T_C = 275.0;
379
380 Evaluation A = (0.42*std::pow((std::pow(salinity, 0.8)-0.17), 2) + 0.045)*pow(T_C, 0.8);
381 Evaluation mu_brine = 0.1 + 0.333*salinity + (1.65+91.9*salinity*salinity*salinity)*exp(-A);
382
383 return mu_brine/1000.0; // convert to [Pa s] (todo: check if correct cP->Pa s is times 10...)
384 }
385};
386
390template <class Scalar, class H2O>
391Scalar Brine<Scalar, H2O>::salinity = 0.1; // also needs to be adapted in CO2 solubility table!
392
393} // namespace Opm
394
395#endif
Abstract base class of a pure chemical species.
A traits class which provides basic mathematical functions for arbitrary scalar floating point values...
A class for the brine fluid properties.
Definition Brine.hpp:48
static Scalar molarMass()
The molar mass in of the component.
Definition Brine.hpp:82
static Evaluation gasPressure(const Evaluation &temperature, const Evaluation &density)
The pressure of steam in at a given density and temperature.
Definition Brine.hpp:323
static Scalar criticalVolume()
Returns the critical volume of water.
Definition Brine.hpp:105
static Scalar tripleTemperature()
Returns the temperature at water's triple point.
Definition Brine.hpp:117
static Scalar criticalPressure()
Returns the critical pressure of water.
Definition Brine.hpp:99
static Evaluation gasInternalEnergy(const Evaluation &temperature, const Evaluation &pressure)
Specific internal energy of steam and water vapor .
Definition Brine.hpp:238
static Evaluation vaporPressure(const Evaluation &T)
The vapor pressure in of pure water at a given temperature.
Definition Brine.hpp:139
static Evaluation liquidEnthalpy(const Evaluation &temperature, const Evaluation &pressure)
Specific enthalpy of the pure component in liquid.
Definition Brine.hpp:159
static std::string_view name()
A human readable name for the component.
Definition Brine.hpp:56
static bool gasIsCompressible()
Returns true iff the gas phase is assumed to be compressible.
Definition Brine.hpp:68
static Evaluation liquidDensity(const Evaluation &temperature, const Evaluation &pressure, const Evaluation &rhow)
The density of the liquid component at a given pressure in and temperature in .
Definition Brine.hpp:297
static Evaluation liquidDensity(const Evaluation &temperature, const Evaluation &pressure, bool extrapolate=false)
The density of the liquid component at a given pressure in and temperature in .
Definition Brine.hpp:277
static Evaluation gasViscosity(const Evaluation &temperature, const Evaluation &pressure)
The dynamic viscosity of steam.
Definition Brine.hpp:362
static Evaluation gasDensity(const Evaluation &temperature, const Evaluation &pressure)
The density of steam in at a given pressure and temperature.
Definition Brine.hpp:262
static Scalar criticalTemperature()
Returns the critical temperature of water.
Definition Brine.hpp:93
static Scalar triplePressure()
Returns the pressure at water's triple point.
Definition Brine.hpp:123
static Evaluation gasHeatCapacity(const Evaluation &temperature, const Evaluation &pressure)
Specific isobaric heat capacity of water steam .
Definition Brine.hpp:230
static Evaluation liquidViscosity(const Evaluation &temperature, const Evaluation &)
The dynamic viscosity of pure water.
Definition Brine.hpp:374
static Evaluation liquidInternalEnergy(const Evaluation &temperature, const Evaluation &pressure)
Specific internal energy of liquid water .
Definition Brine.hpp:250
static Evaluation liquidPressure(const Evaluation &temperature, const Evaluation &density)
The pressure of liquid water in at a given density and temperature.
Definition Brine.hpp:330
static bool liquidIsCompressible()
Returns true iff the liquid phase is assumed to be compressible.
Definition Brine.hpp:74
static bool gasIsIdeal()
Returns true iff the gas phase is assumed to be ideal.
Definition Brine.hpp:62
static Evaluation gasEnthalpy(const Evaluation &temperature, const Evaluation &pressure)
Specific enthalpy of the pure component in gas.
Definition Brine.hpp:146
static Scalar salinity
Definition Brine.hpp:51
static Scalar acentricFactor()
Definition Brine.hpp:111
static Evaluation liquidHeatCapacity(const Evaluation &temperature, const Evaluation &pressure)
Specific isobaric heat capacity of liquid water .
Definition Brine.hpp:219
Abstract base class of a pure chemical species.
Definition Component.hpp:44
static Evaluation liquidDensity(const Evaluation &temperature, const Evaluation &pressure, bool extrapolate=false)
The density of pure water in at a given pressure and temperature.
Definition H2O.hpp:690
static const Scalar criticalTemperature()
Returns the critical temperature of water.
Definition H2O.hpp:97
static Evaluation gasDensity(const Evaluation &temperature, const Evaluation &pressure)
The density of steam in at a given pressure and temperature.
Definition H2O.hpp:564
static bool gasIsCompressible()
Returns true iff the gas phase is assumed to be compressible.
Definition H2O.hpp:542
static Evaluation gasPressure(const Evaluation &temperature, Scalar density)
The pressure of steam in at a given density and temperature.
Definition H2O.hpp:645
static Evaluation vaporPressure(Evaluation temperature)
The vapor pressure in of pure water at a given temperature.
Definition H2O.hpp:143
static Evaluation gasViscosity(const Evaluation &temperature, const Evaluation &pressure)
The dynamic viscosity of steam.
Definition H2O.hpp:793
static Evaluation gasHeatCapacity(const Evaluation &temperature, const Evaluation &pressure)
Specific isobaric heat capacity of water steam .
Definition H2O.hpp:281
static Evaluation liquidEnthalpy(const Evaluation &temperature, const Evaluation &pressure)
Specific enthalpy of liquid water .
Definition H2O.hpp:239
static const Scalar acentricFactor()
The acentric factor of water.
Definition H2O.hpp:91
static bool gasIsIdeal()
Returns true iff the gas phase is assumed to be ideal.
Definition H2O.hpp:629
static const Scalar criticalPressure()
Returns the critical pressure of water.
Definition H2O.hpp:103
static const Scalar molarMass()
The molar mass in of water.
Definition H2O.hpp:85
static bool liquidIsCompressible()
Returns true iff the liquid phase is assumed to be compressible.
Definition H2O.hpp:548
static Evaluation gasEnthalpy(const Evaluation &temperature, const Evaluation &pressure)
Specific enthalpy of water steam .
Definition H2O.hpp:188
static const Scalar tripleTemperature()
Returns the temperature at water's triple point.
Definition H2O.hpp:121
static const Scalar triplePressure()
Returns the pressure at water's triple point.
Definition H2O.hpp:127
static const Scalar criticalVolume()
Returns the critical volume of water.
Definition H2O.hpp:109
This class implements a small container which holds the transmissibility mulitpliers for all the face...
Definition Exceptions.hpp:30