A roadmap to hadronic supercriticalities: a comprehensive study of the parameter space for high-energy astrophysical sources
Abstract
Hadronic supercriticalities are radiative instabilities that appear when large amounts of energy are stored in relativistic protons. When the proton energy density exceeds some critical value, a runaway process is initiated resulting in the explosive transfer of the proton energy into electron-positron pairs and radiation. The runaway also leads to an increase of the radiative efficiency, namely the ratio of the photon luminosity to the injected proton luminosity. We perform a comprehensive study of the parameter space by investigating the onset of hadronic supercriticalities for a wide range of source parameters (i.e., magnetic field strengths of 1 G kG and radii of cm cm) and maximum proton Lorentz factors (). We show that supercriticalities are possible for the whole range of source parameters related to compact astrophysical sources, like gamma-rays bursts, cores and jets of active galactic nuclei. We also provide an in-depth look at the physical mechanisms of hadronic supercriticalities and show that magnetized relativistic plasmas are excellent examples of non-linear dynamical systems in high-energy astrophysics.
Keywords
Cite
@article{arxiv.2003.06956,
title = {A roadmap to hadronic supercriticalities: a comprehensive study of the parameter space for high-energy astrophysical sources},
author = {Apostolos Mastichiadis and Ioulia Florou and Elina Kefala and Stella S. Boula and Maria Petropoulou},
journal= {arXiv preprint arXiv:2003.06956},
year = {2020}
}
Comments
17 pages, 14 figures, 2 tables, accepted for publication in MNRAS