Thermodynamic model for mineral solubility in aqueous fluids: theory, calibration and application to model fluid-flow systems

被引:124
作者
Dolejs, D. [1 ,2 ]
Manning, C. E. [2 ,3 ]
机构
[1] Charles Univ Prague, Inst Petr & Struct Geol, Prague 12843 2, Czech Republic
[2] Univ Bayreuth, Bayer Geoinst, D-8580 Bayreuth, Germany
[3] Univ Calif Los Angeles, Dept Earth & Space Sci, Los Angeles, CA 90024 USA
关键词
density model; hydration; mass transfer; mineral solubility; thermodynamics; PARTIAL MOLAR VOLUMES; SODIUM-CHLORIDE SOLUTIONS; 1000; DEGREES-C; HIGH-PRESSURES; INFINITE DILUTION; DIELECTRIC-CONSTANT; RUTILE SOLUBILITY; QUARTZ SOLUBILITY; HIGH-TEMPERATURES; WIDE RANGES;
D O I
10.1111/j.1468-8123.2010.00282.x
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
We present a thermodynamic model for mineral dissolution in aqueous fluids at elevated temperatures and pressures, based on intrinsic thermal properties and variations of volumetric properties of the aqueous solvent. The standard thermodynamic properties of mineral dissolution into aqueous fluid consist of two contributions: one from the energy of transformation from the solid to the hydrated-species state and the other from the compression of solvent molecules during the formation of a hydration shell. The latter contribution has the dimension of the generalized Krichevskii parameter. This approach describes the energetics of solvation more accurately than does the Born electrostatic theory and can be extended beyond the limits of experimental measurements of the dielectric constant of H2O. The new model has been calibrated by experimental solubilities of quartz, corundum, rutile, calcite, apatite, fluorite and portlandite in pure H2O at temperatures up to 1100 degrees C and pressures up to 20 kbar. All minerals show a steady increase in solubility along constant geothermal gradients or water isochores. By contrast, isobaric solubilities initially increase with rising temperature but then decline above 200-400 degrees C. This retrograde behavior is caused by variations in the isobaric expansivity of the aqueous solvent, which approaches infinity at its critical point. Oxide minerals predominantly dissolve to neutral species; so, their dissolution energetics involve a relatively small contribution from the solvent volumetric properties and their retrograde solubilities are restricted to a relatively narrow window of temperature and pressure near the critical point of water. By contrast, Ca-bearing minerals dissolve to a variety of charged species; so, the energetics of their dissolution reactions involve a comparatively large contribution from volume changes of the aqueous solvent and their isobaric retrograde solubility spans nearly all metamorphic and magmatic conditions. These features correlate with and can be predicted from the standard partial molar volumes of aqueous species. The thermodynamic model can be used over much wider range of settings for terrestrial fluid-rock interaction than has previously been possible. To illustrate, it is integrated with transport theory to show quantitatively that integrated fluid fluxes characteristic of crustal shear zones are capable of precipitating quartz or calcite veins from low-and medium-grade metamorphic conditions, at a geothermal gradient of 20 degrees C km(-1). For subduction zones, modeled by a geotherm of 7 degrees C km(-1), the required fluid fluxes are one to two orders of magnitude lower and predict enhanced efficiency of mass transfer and metasomatic precipitation in comparison with orogenic settings. The new model thus can be applied to shallow hydrothermal, metamorphic, magmatic and subduction fluids, and for retrieval of dependent thermodynamic properties for mass transfer or geodynamic modeling.
引用
收藏
页码:20 / 40
页数:21
相关论文
共 167 条
[1]  
Ague J.J., 2003, CRUSTACEANA, V3, P195, DOI 10.1016/B0-08-043751-6/03023-1
[2]   MASS-TRANSFER DURING BARROVIAN METAMORPHISM OF PELITES, SOUTH-CENTRAL CONNECTICUT .1. EVIDENCE FOR CHANGES IN COMPOSITION AND VOLUME [J].
AGUE, JJ .
AMERICAN JOURNAL OF SCIENCE, 1994, 294 (08) :989-1057
[3]   Simple models of coupled fluid infiltration and redox reactions in the crust [J].
Ague, JJ .
CONTRIBUTIONS TO MINERALOGY AND PETROLOGY, 1998, 132 (02) :180-197
[4]   A simple predictive model of quartz solubility in water-salt-CO2 systems at temperatures up to 1000 °C and pressures up to 1000 MPa [J].
Akinfiev, Nikolay N. ;
Diamond, Larryn W. .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2009, 73 (06) :1597-1608
[5]   A three-parameter EoS to describe aqueous non-electrolytes at infinite dilution over a wide range of state parameters, with preliminary application to 1:1 electrolytes [J].
Akinfiev, NN ;
Diamond, LW .
FLUID PHASE EQUILIBRIA, 2004, 222 :31-37
[6]   Thermodynamic description of aqueous nonelectrolytes at infinite dilution over a wide range of state parameters [J].
Akinfiev, NN ;
Diamond, LW .
GEOCHIMICA ET COSMOCHIMICA ACTA, 2003, 67 (04) :613-629
[7]  
Akinfiev NN, 2001, GEOCHEM INT+, V39, P1242
[8]  
Anderson G.M., 2005, THERMODYNAMICS NATUR
[9]   THE DENSITY MODEL FOR ESTIMATION OF THERMODYNAMIC PARAMETERS OF REACTIONS AT HIGH-TEMPERATURES AND PRESSURES [J].
ANDERSON, GM ;
CASTET, S ;
SCHOTT, J ;
MESMER, RE .
GEOCHIMICA ET COSMOCHIMICA ACTA, 1991, 55 (07) :1769-1779
[10]   SOLUBILITY OF QUARTZ IN SUPERCRITICAL WATER [J].
ANDERSON, GM ;
BURNHAM, CW .
AMERICAN JOURNAL OF SCIENCE, 1965, 263 (06) :494-&