English

Self-gravitating equilibrium with slow steady flow and its consistent form of entropy current

General Relativity and Quantum Cosmology 2026-04-07 v2 Solar and Stellar Astrophysics High Energy Physics - Phenomenology High Energy Physics - Theory

Abstract

A relativistic self-gravitating equilibrium system with spherical symmetry as well as with steady energy flow is investigated perturbatively around the hydrostatic limit, where the radial component of the fluid velocity field uμu^\mu is sufficiently small. Each component of vectors and tensors consisting of the system is expanded in different powers, which makes the covariant perturbation approach ineffective. The differential equations to determine the subleading correction of the structure variables are presented. The system retains the current jμj^\mu accounting for the steady flow, which contributes to the entropy current sμs^\mu in such a general covariant form that sμ=auμ+bjμs^\mu=au^\mu+ bj^\mu with a,ba, b unknown parametric functions. To determine them, a new condition is proposed. This condition imposes the entropy current to be of an unconventional form sμ=(sbj0)uμ/u0+bjμs^\mu=(s-bj^0)u^\mu/u^0+ bj^\mu, where ss is the entropy density. The remaining parameter bb is fixed by the current conservation equation. The perturbative analysis shows that bb starts with the quadratic order and its leading term is determined explicitly.

Keywords

Cite

@article{arxiv.2512.11914,
  title  = {Self-gravitating equilibrium with slow steady flow and its consistent form of entropy current},
  author = {Shuichi Yokoyama},
  journal= {arXiv preprint arXiv:2512.11914},
  year   = {2026}
}

Comments

1+12 pages, no figure, v2: minor modifications, discussion on the 2nd law of thermodynamics, references added, published version