English

Mass of the universe in a black hole

Cosmology and Nongalactic Astrophysics 2011-10-26 v1 General Relativity and Quantum Cosmology

Abstract

If spacetime torsion couples to the intrinsic spin of matter according to the Einstein-Cartan-Sciama-Kibble theory of gravity, then the resulting gravitational repulsion at supranuclear densities prevents the formation of singularities in black holes. Consequently, the interior of every black hole becomes a new universe that expands from a nonsingular bounce. We consider gravitational collapse of fermionic spin-fluid matter with the stiff equation of state in a stellar black hole. Such a collapse increases the mass of the matter, which occurs through the Parker-Zel'dovich-Starobinskii quantum particle production in strong, anisotropic gravitational fields. The subsequent pair annihilation changes the stiff matter into an ultrarelativistic fluid. We show that the universe in a black hole of mass MBHM_\textrm{BH} at the bounce has a mass MbMBH2mn1/2/mPl3/2M_\textrm{b}\sim M^2_\textrm{BH} m^{1/2}_\textrm{n}/m^{3/2}_\textrm{Pl}, where mnm_\textrm{n} is the mass of a neutron and mPlm_\textrm{Pl} is the reduced Planck mass. For a typical stellar black hole, MbM_\textrm{b} is about 103210^{32} solar masses, which is 10610^6 larger than the mass of our Universe. As the relativistic black-hole universe expands, its mass decreases until the universe becomes dominated by nonrelativistic heavy particles.

Keywords

Cite

@article{arxiv.1110.5019,
  title  = {Mass of the universe in a black hole},
  author = {Nikodem J. Poplawski},
  journal= {arXiv preprint arXiv:1110.5019},
  year   = {2011}
}

Comments

4 pages. arXiv admin note: substantial text overlap with arXiv:1103.4192