The derivation of thermo-physical properties and phase equilibria of silicate materials from lattice vibrations: Application to convection in the Earth’s mantle

We used a lattice vibrational technique to derive thermophysical and thermochemical properties and phase equilibria in the system Mg 2SiO 4. The technique is based on an extension of Kieffer’s model to incorporate details of the phonon spectrum, and it includes treatment of intrinsic anharmonicity....

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Veröffentlicht in:Calphad 2006-06, Vol.30 (2), p.131-146
Hauptverfasser: Jacobs, Michel H.G., van den Berg, Arie P., de Jong, Bernard H.W.S.
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container_title Calphad
container_volume 30
creator Jacobs, Michel H.G.
van den Berg, Arie P.
de Jong, Bernard H.W.S.
description We used a lattice vibrational technique to derive thermophysical and thermochemical properties and phase equilibria in the system Mg 2SiO 4. The technique is based on an extension of Kieffer’s model to incorporate details of the phonon spectrum, and it includes treatment of intrinsic anharmonicity. We show that anharmonicity significantly impacts phase boundaries and sound velocities, and demonstrate that the technique discriminates better between experimental data relative to traditional Calphad techniques. We show that calculated thermophysical properties are anomaly free in pressure–temperature space up to core–mantle-boundary conditions in the Earth. Our technique has been applied to a mantle convection experiment to simulate material transport in global thermal convection of a Mg 2SiO 4 earth mantle. Preliminary results indicate a low degree of layering in mantle flow near 660 km depth in the earth and strong lateral variation of the post-perovskite layer near the bottom of the mantle.
doi_str_mv 10.1016/j.calphad.2005.10.001
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source ScienceDirect Journals (5 years ago - present)
subjects Anharmonicity
Chemistry
Earth sciences
Earth, ocean, space
Equation of state
Exact sciences and technology
General and physical chemistry
Geophysics: general, magnetic, electric and thermic methods and properties
Internal geophysics
Lattice vibrations
Mantle convection
Phase equilibria
Sound velocity
Thermal expansivity
title The derivation of thermo-physical properties and phase equilibria of silicate materials from lattice vibrations: Application to convection in the Earth’s mantle
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