A THERMODYNAMIC MODEL OF FE-CR SPINELS

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dc.contributor.author Kurepin V.A.
dc.date.accessioned 2023-12-16T06:35:04Z
dc.date.available 2023-12-16T06:35:04Z
dc.date.issued 2005
dc.identifier https://www.elibrary.ru/item.asp?id=27779426
dc.identifier.citation Contributions to Mineralogy and Petrology, 2005, 149, 5, 591-599
dc.identifier.issn 0010-7999
dc.identifier.uri https://repository.geologyscience.ru/handle/123456789/42331
dc.description.abstract A new thermodynamic model for multi-component spinel solid solutions has been developed which takes into account thermodynamic consequences of cation mixing in spinel sublattices. It has been applied to the evaluation of thermodynamic functions of cation mixing and thermodynamic properties of Fe3O4-FeCr2O4 spinels using intracrystalline cation distribution in magnetite, lattice parameters and activity-composition relations of magnetite-chromite solid solutions. According to the model, cation distribution in binary spinels, (Fe1-x 2+ Fex 3+) [Fex 2+ Fe2-2y-x 3+ Cr2y]O4, and their thermodynamic properties depend strongly on Fe2+ -Cr3+ cation mixing. Mixing of Fe2+ -Fe3+ and Fe3+ -Cr3+ can be accepted as ideal. If Fe2+, Fe3+ and Cr are denoted as 1, 3 and 4 respectively, the equation of cation distribution is -RT ln(x2/((1-x)(2-y-x)))= ΔG13* + (1-2x)W13 + y(W14-W13-W34) where ΔG13* is the difference between the Gibbs energy of inverse and normal magnetite, Wij is a Margules parameter of cation mixing and ΔG13*, J/mol = -23,000+13.4 T, W14=36 kJ/mol, W13= W34 = 0. The positive nonconfigurational Gibbs energy of mixing is the main reason for changing activity composition relations with temperature. According to the model, the solvus in Fe3 O4-FeCr2O2 spinel has a critical temperature close to 500°C, which is consistent with mineralogical data. © Springer-Verlag 2005.
dc.subject thermodynamic model
dc.subject spinel
dc.title A THERMODYNAMIC MODEL OF FE-CR SPINELS
dc.type Статья
dc.identifier.doi 10.1007/s00410-005-0669-4


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