A method for the cticulation of thermcdynamic functions of binary mixtures from Monte Carlo data is outlined. Values obtained for the excess free energy, volume and enthalpy for a range of binary Lennard-Jones (12-6) Iiquids are compared with the predictions of three versions of the APM-theory.
Monte Carlo calculations of thermodynamic properties of alloys in the case of the surrounded atom model
โ Scribed by C Bichara; C Bergman; J.-C Mathieu
- Publisher
- Elsevier Science
- Year
- 1985
- Weight
- 609 KB
- Volume
- 33
- Category
- Article
- ISSN
- 0001-6160
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โฆ Synopsis
Monte
Carlo calculations arc carried out to give exact values of some thermodynamic properties of alloys. The calculations are performed within the framework of the surrounded atom model the main assumptions of which are: quasilattice structure of the alloy, nearest neighbour interactions, description of the ~n~guration in terms of "surrounds atoms". The results are then compared with those obtained using current approximations: the 3ra~-Williams treatment and the quasichemical treatment.
'Ihis work enables us to generalixe the previous conclusions drawn in the study of the regular solution model. In every case, whatever the sign of the interactions (ordering or clustering tendency) Monte Carlo calculations yield a local order that both approximations fail to reproduce.
In order to compare the calculations with some experimental data, Cowley's short range order parameter 01, is calculated by Monte Carlo and by the approximate methods (the parameters of the surrounded atom model are derived from the~~ynamic data). The Monte Carlo values compare better than the quasichemical ones with the data obtained by X-ray or neutron diffraction in three actual systems.
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