Физико-химическое моделирование в нефтегазовой геохимии. Часть 2. Модели гетерогенных систем. Бычинский В.А - 87 стр.

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– 87 –
25. Ýéãåñîí À.Ñ. Î ïðîòèâîñòîÿíèè äâóõ êîíöåïöèé íåôòåãàçîîá-
ðàçîâàíèÿ// Õèìèÿ è òåõíîëîãèÿ òîïëèâ è ìàñåë. – 1998. – ¹3. –
Ñ. 3–5.
26. Berman R.G. Internally-consistent thermodynamic data for minerals
in the system Na
2
O–K
2
O–CaO–MgO–FeO–Fe
2
O
3
–Al
2
O
3
–SiO
2
TiO
2
–H
2
O–CO
2
// J. Petrology. – 1988. – ¹29. – P. 445–522.
27. Ghiorso M.S., Sack R.O. Chemical mass transfer in magmatic pro-
cesses IV. A revised and internally consistent thermodynamic model
for the interpolation and extrapolation of liquid-solid equilibria in
magmatic systems at elevated temperatures and pressures// Contrib.
Mineral. Petrol. – 1995. – V. 119. – P. 197–212.
28. Gregory A.R., Backus M.M. Geopressured formation parameters, geo-
thermal well, Brazoria County// Texas, in Proc. 4th Geopressured-
Geothermal Energy Conf. – 1980. – V. 1. – P. 235–311.
29. Helgeson H.C. Organic/inorganic reactions in metamorphic proces-
ses// Canadian Mineral. – 1991. – ¹29. – P. 707–739.
30. Helgeson H.C., Knox A., Owens C.E., Shock E.L. Petroleum, oil-
field waters and authigenic mineral assemblages: Are they in meta-
stable equilibrium in hydrocarbon reservoirs?// Geochimica et Cos-
mochimica Acta. – 1993. – V. 57. – P. 3295–3339.
31. Holland T.J.B., Powell R. An enlarged and updated internally consistent
thermodynamics data set with uncertainties and correlations: the sys-
tem K
2
O–Na
2
O–CaO–MgO–MnO–FeO–Fe
2
O
3
–Al
2
O
3
–TiO
2
–SiO
2
–C–
H
2
–O
2
// J. Metamorphic Geology. – 1990. –¹8. – P. 89–124.
32. Holland T.J.B., Powell R. An internally-consistent thermodynamic
data for phases of petrological interests// J. Metamorphic Geology.
– 1998. – ¹16. – P. 309–343.
33. Johnson J.W., Oelkers E.H., Helgeson H.C. SUPCRT92: A soft-
ware package for calculating the standard molal thermodynamic
properties of mineral gases, aqueous species, and reactions from
1 to 5000 bars and 0 to 1000 °C// Comput. & Geosci. – 1992. –
¹18. – P. 899–947.
34. Kharaka Y.K., Carothers W.W., Rosenbauer R.J. Thermal decarb-
oxylation of acetic acid: implications for origin of natural gas//
Geochim. Cosmochim. Acta. – 1983. – ¹47. – P. 397–402.
                                  – 87 –
25. Ýéãåñîí À.Ñ. Î ïðîòèâîñòîÿíèè äâóõ êîíöåïöèé íåôòåãàçîîá-
    ðàçîâàíèÿ// Õèìèÿ è òåõíîëîãèÿ òîïëèâ è ìàñåë. – 1998. – ¹3. –
    Ñ. 3–5.
26. Berman R.G. Internally-consistent thermodynamic data for minerals
    in the system Na2O–K2O–CaO–MgO–FeO–Fe2O3–Al2O 3–SiO 2–
    TiO2–H2O–CO2// J. Petrology. – 1988. – ¹29. – P. 445–522.
27. Ghiorso M.S., Sack R.O. Chemical mass transfer in magmatic pro-
    cesses IV. A revised and internally consistent thermodynamic model
    for the interpolation and extrapolation of liquid-solid equilibria in
    magmatic systems at elevated temperatures and pressures// Contrib.
    Mineral. Petrol. – 1995. – V. 119. – P. 197–212.
28. Gregory A.R., Backus M.M. Geopressured formation parameters, geo-
    thermal well, Brazoria County// Texas, in Proc. 4th Geopressured-
    Geothermal Energy Conf. – 1980. – V. 1. – P. 235–311.
29. Helgeson H.C. Organic/inorganic reactions in metamorphic proces-
    ses// Canadian Mineral. – 1991. – ¹29. – P. 707–739.
30. Helgeson H.C., Knox A., Owens C.E., Shock E.L. Petroleum, oil-
    field waters and authigenic mineral assemblages: Are they in meta-
    stable equilibrium in hydrocarbon reservoirs?// Geochimica et Cos-
    mochimica Acta. – 1993. – V. 57. – P. 3295–3339.
31. Holland T.J.B., Powell R. An enlarged and updated internally consistent
    thermodynamics data set with uncertainties and correlations: the sys-
    tem K2O–Na2O–CaO–MgO–MnO–FeO–Fe2O3–Al2O3–TiO2–SiO2–C–
    H2–O2// J. Metamorphic Geology. – 1990. –¹8. – P. 89–124.
32. Holland T.J.B., Powell R. An internally-consistent thermodynamic
    data for phases of petrological interests// J. Metamorphic Geology.
    – 1998. – ¹16. – P. 309–343.
33. Johnson J.W., Oelkers E.H., Helgeson H.C. SUPCRT92: A soft-
    ware package for calculating the standard molal thermodynamic
    properties of mineral gases, aqueous species, and reactions from
    1 to 5000 bars and 0 to 1000 °C// Comput. & Geosci. – 1992. –
    ¹18. – P. 899–947.
34. Kharaka Y.K., Carothers W.W., Rosenbauer R.J. Thermal decarb-
    oxylation of acetic acid: implications for origin of natural gas//
    Geochim. Cosmochim. Acta. – 1983. – ¹47. – P. 397–402.