A Classification of Spherically Symmetric Kinematic Self-Similar Perfect-Fluid Solutions
Abstract
We classify all spherically symmetric spacetimes admitting a kinematic self-similar vector of the second, zeroth or infinite kind. We assume that the perfect fluid obeys either a polytropic equation of state or an equation of state of the form , where and are the pressure and the energy density, respectively, and is a constant. We study the cases in which the kinematic self-similar vector is not only ``tilted'' but also parallel or orthogonal to the fluid flow. We find that, in contrast to Newtonian gravity, the polytropic perfect-fluid solutions compatible with the kinematic self-similarity are the Friedmann-Robertson-Walker solution and general static solutions. We find three new exact solutions which we call the dynamical solutions (A) and (B) and -cylinder solution, respectively.
Keywords
Cite
@article{arxiv.gr-qc/0207120,
title = {A Classification of Spherically Symmetric Kinematic Self-Similar Perfect-Fluid Solutions},
author = {Hideki Maeda and Tomohiro Harada and Hideo Iguchi and Naoya Okuyama},
journal= {arXiv preprint arXiv:gr-qc/0207120},
year = {2009}
}
Comments
Revised version, a reference added, 36 pages, 4 tables, no figures, accepted for publication in Progress of Theoretical Physics