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Bibliographie

[1] C.A.J. Appelo, D.L. Parkhurst, and V.E.A. Post. Equations for calculating hydrogeochemical reactions of minerals and gases such as CO2 at high pressures
and temperatures. Geochimica et Cosmochimica Acta, 125 :49–67, 2014.
[2] J.N. Bronsted. Studies on solubility. IV. The principle of the specific interaction of ions. Journal of the American Chemical Society, 44 :877–898, 1922.
[3] J. Corvisier. Modeling water-gas-rock interactions using CHESS/HYTEC. In Goldschmidt Conference, Florence, Italy, 2013.
[4] I. Grenthe and I. Puigdomenech. Modelling in Aquatic Chemistry. Nuclear Energy Agency, OECD, Paris, France, 1997.
[5] R.W.D. Nickalls. A new approach to solving the cubic : Cardan’s solution revealed. The Mathematical Gazette, 77 :354–359, 1993.
[6] D.L. Parkhurst and C.A.J. Appelo. Description of input and examples for PHREEQC version 3 - a computer program for speciation, batch-reaction, onedimensional transport, and inverse geochemical calculations. Technical report, U.S. Geological Survey Techniques and Methods Report, book 6, 2013.
[7] D.-Y. Peng and D.B. Robinson. A new two-constant equation of state. Industrial and Engineering Chemistry Fundamentals, 15 :59–64, 1976.
[8] K.S. Pitzer. Thermodynamics of electrolytes. I. Theoretical basis and general equations. The Journal of Physical Chemistry, 77 :268–277, 1973.
[9] K.S. Pitzer. Activity Coefficients in Electrolyte Solutions. CRC Press, Boca Raton, USA, 1991.
[10] I. Soreide and C.H. Whitson. Peng-Robinson predictions for hydrocarbons, CO2, N2, and H2S with pure water and NaCl brine. Fluid Phase Equilibria, 77 :217–
240, 1992.
[11] N. Spycher, K. Pruess, and J. Ennis-King. CO2-H2O mixtures in the geological sequestration of CO2. I. Assessment and calculation of mutual solubilities from
12 to 100 C and up to 600 bar. Geochimica et Cosmochimica Acta, 67 :3015–3031, 2003.
[12] J. Van der Lee. Thermodynamic and mathematical concepts of CHESS. Technical report, MINES ParisTech RT-20093103-JVDL, 2009.