English

Self-Similar Dynamics of a Relativistically Hot Gas

Astrophysics 2009-11-13 v1

Abstract

In the presence of self-gravity, we investigate the self-similar dynamics of a relativistically hot gas with or without shocks in astrophysical processes of stellar core collapse, formation of compact objects, and supernova remnants with central voids. The model system is taken to be spherically symmetric and the conservation of specific entropy along streamlines is adopted for a relativistic hot gas. In terms of equation of state, this leads to a polytropic index γ=4/3\gamma=4/3. The conventional polytropic gas of P=κργP=\kappa\rho^\gamma, where PP is the thermal pressure, ρ\rho is the mass density, γ\gamma is the polytropic index, and κ\kappa is a global constant, is included in our theoretical model framework. Two qualitatively different solution classes arise according to the values of a simple power-law scaling index aa, each of which is analyzed separately and systematically. We obtain new asymptotic solutions that exist only for γ=4/3\gamma=4/3. Global and asymptotic solutions in various limits as well as eigensolutions across sonic critical lines are derived analytically and numerically with or without shocks. By specific entropy conservation along streamlines, we extend the analysis of Goldreich & Weber for a distribution of variable specific entropy with time tt and radius rr and discuss consequences in the context of a homologous core collapse prior to supernovae. As an alternative rebound shock model, we construct an Einstein-de Sitter explosion with shock connections with various outer flows including a static outer part of a singular polytropic sphere (SPS). Under the joint action of thermal pressure and self-gravity, we can also construct self-similar solutions with central spherical voids with sharp density variations along their edges.

Keywords

Cite

@article{arxiv.0711.1729,
  title  = {Self-Similar Dynamics of a Relativistically Hot Gas},
  author = {Yu-Qing Lou and Yi Cao},
  journal= {arXiv preprint arXiv:0711.1729},
  year   = {2009}
}

Comments

21 pages, 15 figures, accepted for publication in MNRAS