Thermodynamics and phase separation of dense fully ionized hydrogen-helium fluid mixtures
- Creators
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Stevenson, D. J.
Abstract
The free energy of a hydrogen-helium fluid mixture is evaluated for the temperatures and densities appropriate to the deep interior of a giant planet such as Jupiter. The electrons are assumed to be fully pressure ionized and degenerate. In this regime, an appropriate first approximation to the ionic distribution functions can be found by assuming hard-sphere interactions. Corrections to this approximation are incorporated by means of the perturbation theory of Anderson and Chandler. Approximations for the three-body interactions and the nonlinear response of the electron gas to the ions are included. We predict that a hydrogen-helium mixture, containing 10% by number of helium ions, separates into hydrogen-rich and helium-rich phases below about 8000°K, at the pressures relevant to Jupiter (4-40 Mbar). We also predict that the alloy occupies less volume per ion than the separated phases. The equation of state and other thermodynamic derivatives are tabulated. The implications of these results are mentioned.
Additional Information
© 1975 American Physical Society. Received 10 February 1975. Supported by the National Aeronautics and Space Administration Grant No. NGR-33-010-188 and the National Science Foundation Grant No. MPS 74-17838.Attached Files
Published - PhysRevB.12.3999.pdf
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Additional details
- Eprint ID
- 38903
- Resolver ID
- CaltechAUTHORS:20130612-085813697
- NASA
- NGR-33-010-188
- NSF
- MPS 74-17838
- Created
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2013-06-12Created from EPrint's datestamp field
- Updated
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2021-11-09Created from EPrint's last_modified field
- Caltech groups
- Division of Geological and Planetary Sciences (GPS)