Cold collapse and bounce of an FLRW cloud

Swaraj Pradhan*, Michael Gabler, Enrique Gaztañaga

*Corresponding author for this work

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Abstract

We study the collapse of spherical cold clouds beyond black hole formation to investigate the possibility of a bounce in the in-falling matter when a critical density or pressure is reached. As a first step, we analyse the pressureless collapse in general relativity (GR), where an analytic solution exists, and demonstrate that an equivalent Newtonian solution can be derived. Such equivalence also holds for spherically symmetric perfect fluids with uniform density and non-vanishing pressure. We numerically investigate the Newtonian collapse of such clouds with masses of 5, 20, and 1000 M obeying a polytropic equation of state (EoS). By choosing EoS parameters inspired by typical neutron star conditions, we observe bounces at and above nuclear saturation density. Assuming approximate uniformity, we explore the equivalent GR behaviour of the matter during the bounce. Our findings are as follows: (i) A GR bounce occurs around the ground state of the matter, characterized by P = . (ii) The GR solution differs significantly from the Newtonian result due to the presence of curvature (k ≠ 0). (iii) Both the curvature and the ground state are crucial factors in allowing a GR bounce to occur.

Original languageEnglish
Pages (from-to)1232-1248
Number of pages17
JournalMonthly Notices of the Royal Astronomical Society
Volume537
Issue number2
Early online date8 Jan 2025
DOIs
Publication statusPublished - 1 Feb 2025

Keywords

  • black hole physics
  • cosmology: theory
  • dark energy
  • early Universe
  • hydrodynamics
  • inflation

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