Theoretical thermodynamics of mixtures at high pressures
Abstract
The development of an understanding of the chemistry of mixtures of metallic hydrogen and abundant, higher-z material such as oxygen, carbon, etc., is important for understanding of fundamental processes of energy release, differentiation, and development of atmospheric abundances in the Jovian planets. It provides a significant theoretical base for the interpretation of atmospheric elemental abundances to be provided by atmospheric entry probes in coming years. Significant differences are found when non-perturbative approaches such as Thomas-Fermi-Dirac (TFD) theory are used. Mapping of the phase diagrams of such binary mixtures in the pressure range from approx. 10 Mbar to approx. 1000 Mbar, using results from three-dimensional TFD calculations is undertaken. Derivation of a general and flexible thermodynamic model for such binary mixtures in the relevant pressure range was facilitated by the following breakthrough: there exists an accurate nd fairly simple thermodynamic representation of a liquid two-component plasma (TCP) in which the Helmholtz free energy is represented as a suitable linear combination of terms dependent only on density and terms which depend only on the ion coupling parameter. It is found that the crystal energies of mixtures of H-He, H-C, and H-O can be satisfactorily reproduced by the same type of model, except that an effective, density-dependent ionic charge must be used in place of the actual total ionic charge.
- Publication:
-
Reports of Planetary Geology and Geophysics Program
- Pub Date:
- April 1985
- Bibcode:
- 1985pggp.rept..214H
- Keywords:
-
- Binary Mixtures;
- Energy Distribution;
- High Pressure;
- Kinetic Equations;
- Releasing;
- Thermodynamics;
- Thomas-Fermi Model;
- Atmospheric Models;
- Carbon;
- Electron Distribution;
- Helmholtz Vorticity Equation;
- Mapping;
- Oxygen;
- Phase Diagrams;
- Thermodynamics and Statistical Physics