English

The inner engine of GeV-radiation-emitting gamma-ray bursts

High Energy Astrophysical Phenomena 2019-07-19 v4 General Relativity and Quantum Cosmology

Abstract

We motivate how the most recent progress in the understanding the nature of the GeV radiation in most energetic gamma-ray bursts (GRBs), the binary-driven hypernovae (BdHNe), has led to the solution of a forty years unsolved problem in relativistic astrophysics: how to extract the rotational energy from a Kerr black hole for powering synchrotron emission and ultra high-energy cosmic rays. The "inner engine" is identified in the proper use of a classical solution introduced by Wald in 1974 duly extended to the most extreme conditions found around the newborn black hole in a BdHN. The energy extraction process occurs in a sequence impulsive processes each accelerating protons to 102110^{21} eV in a timescale of 10610^{-6} s and in presence of an external magnetic field of 101410^{14} G. Specific example is given for a black hole of initial angular momentum J=0.3M2J=0.3\,M^2 and mass M3MM\approx 3\,M_\odot leading to the GeV radiation of 104910^{49} erg\cdots1^{-1}. The process can energetically continue for thousands of years.

Keywords

Cite

@article{arxiv.1811.01839,
  title  = {The inner engine of GeV-radiation-emitting gamma-ray bursts},
  author = {R. Ruffini and J. A. Rueda and R. Moradi and Y. Wang and S. S. Xue and L. Becerra and C. L. Bianco and Y. C. Chen and C. Cherubini and S. Filippi and M. Karlica and J. D. Melon Fuksman and D. Primorac and N. Sahakyan and G. V. Vereshchagin},
  journal= {arXiv preprint arXiv:1811.01839},
  year   = {2019}
}

Comments

updated version (7 pages; 2 figures)