Phase transitions in self-gravitating systems: Self-gravitating fermions and hard-sphere models
- 20 May 2002
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review E
- Vol. 65 (5) , 056123
- https://doi.org/10.1103/physreve.65.056123
Abstract
We discuss the nature of phase transitions in self-gravitating systems both in the microcanonical and in the canonical ensemble. We avoid the divergence of the gravitational potential at short distances by considering the case of self-gravitating fermions and hard-sphere models. Depending on the values of the parameters, three kinds of phase transitions (of zeroth, first, and second order) are evidenced. They separate a “gaseous” phase with a smoothly varying distribution of matter from a “condensed” phase with a core-halo structure. We propose a simple analytical model to describe these phase transitions. We determine the value of energy (in the microcanonical ensemble) and temperature (in the canonical ensemble) at the transition point and we study their dependance on the degeneracy parameter (for fermions) or on the size of the particles (for a hard-sphere gas). Scaling laws are obtained analytically in the asymptotic limit of a small short distance cutoff. Our analytical model captures the essential physics of the problem and compares remarkably well with the full numerical solutions. We also stress some analogies with the liquid-gas transition and with the Blume-Emery-Griffiths model with infinite range interactions. In particular, our system presents two tricritical points at which the transition passes from first order to second order.Keywords
All Related Versions
This publication has 31 references indexed in Scilit:
- Gravitational phase transitions in a one-dimensional spherical systemPhysical Review E, 2000
- Thermodynamics of self-gravitating systems with softened potentialsPhysical Review E, 2000
- On the gravitational collapse of stellar systemsClassical and Quantum Gravity, 1998
- Degenerate equilibrium states of collisionless stellar systemsMonthly Notices of the Royal Astronomical Society, 1998
- Gravitational phase transition of fermionic matterPhysics Letters B, 1997
- Phase transitions in gravitating systems and the formation of condensed objectsPlanetary and Space Science, 1995
- Statistical mechanics of gravitating systemsPhysics Reports, 1990
- Thermal Equilibrium States of a Classical System with GravitationThe Astrophysical Journal, 1972
- Free energy of gravitating fermionsCommunications in Mathematical Physics, 1971
- The Gravo-Thermal Catastrophe in Isothermal Spheres and the Onset of Red-Giant Structure for Stellar SystemsMonthly Notices of the Royal Astronomical Society, 1968