Thermodynamic model for solution behavior and solid-liquid equilibrium in Na-Al(III)-Fe(III)-Cr(III)-Cl-H2O system at 25°C

Author:

André Laurent12,Christov Christomir3,Lassin Arnault1,Azaroual Mohamed1

Affiliation:

1. BRGM (French Geological Survey) –3 Avenue Claude Guillemin 45060 Orléans Cedex 1, France

2. ISTO - Institut des Sciences de la Terre d'Orléans - UMR7327 - Campus Géosciences 1A, rue de la Férollerie 45071 Orléans cedex 2 - France

3. Department of Chemistry, Faculty of Natural Sciences , Shumen University “Konstantin Preslavski” , Shumen , Bulgaria

Abstract

Abstract The knowledge of the thermodynamic behavior of multicomponent aqueous electrolyte systems is of main interest in geo-, and environmental-sciences. The main objective of this study is the development of a high accuracy thermodynamic model for solution behavior, and highly soluble M(III)Cl3(s) (M= Al, Fe, Cr) minerals solubility in Na-Al(III)-Cr(III)-Fe(III)-Cl-H2O system at 25°C. Comprehensive thermodynamic models that accurately predict aluminium, chromium and iron aqueous chemistry and M(III) mineral solubilities as a function of pH, solution composition and concentration are critical for understanding many important geochemical and environmental processes involving these metals (e.g., mineral dissolution/alteration, rock formation, changes in rock permeability and fluid flow, soil formation, mass transport, toxic M(III) remediation). Such a model would also have many industrial applications (e.g., aluminium, chromium and iron production, and their corrosion, solve scaling problems in geothermal energy and oil production). Comparisons of solubility and activity calculations with the experimental data in binary and ternary systems indicate that model predictions are within the uncertainty of the data. Limitations of the model due to data insufficiencies are discussed. The solubility modeling approach, implemented to the Pitzer specific interaction equations is employed. The resulting parameterization was developed for the geochemical Pitzer formalism based PHREEQC database.

Publisher

Walter de Gruyter GmbH

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