Ultra-delayed neutrino-driven explosion of rotating massive-star collapse
Abstract
Long-term neutrino-radiation hydrodynamics simulations in full general relativity are performed for the collapse of rotating massive stars that are evolved from He-stars with their initial mass of and . It is shown that if the collapsing stellar core has sufficient angular momentum, the rotationally-supported proto-neutron star (PNS) survives for seconds accompanying the formation of a massive torus of mass larger than . Subsequent mass accretion onto the central region produces a massive and compact central object, and eventually enhances the neutrino luminosity beyond \,erg/s, resulting in a very delayed neutrino-driven explosion in particular toward the polar direction. The kinetic energy of the explosion can be appreciably higher than erg for a massive progenitor star and compatible with that of energetic supernovae like broad-line type-Ic supernovae. By the subsequent accretion, the massive PNS collapses eventually into a rapidly spinning black hole, which could be a central engine for gamma-ray bursts if a massive torus surrounds it.
Cite
@article{arxiv.2102.04467,
title = {Ultra-delayed neutrino-driven explosion of rotating massive-star collapse},
author = {Sho Fujibayashi and Koh Takahashi and Yuichiro Sekiguchi and Masaru Shibata},
journal= {arXiv preprint arXiv:2102.04467},
year = {2021}
}
Comments
12 pages, 5 figures, accepted for publication in ApJ