English

A Disc-Corona Model for a Rotating Black Hole

High Energy Astrophysical Phenomena 2015-06-04 v2

Abstract

We propose a disc-corona model in which a geometrically thin, optically thick disc surrounds a Kerr black hole, and magnetic fields exert a time-steady torque on the inner edge of the accretion disc. The analytical expression of the total gravitational power is derived from the thin-disc dynamics equations by using this new boundary condition. It is shown that the magnetic torque can considerably enhance the amount of energy released in the disc-corona system. Furthermore, the global solutions of this disc-corona system are obtained numerically. We find that the fraction of the power dissipated into the corona in the total for such disc-corona system increases with the increasing dimensionless black hole spin parameter aa_\ast , but is insensitive on the Δε\Delta \varepsilon which is the additional radiative efficiency parameter relevant to magnetic torque, for Δε>1\Delta\varepsilon > 1. In addition, the emerged spectra from this disc-corona system are simulated by using Monte-Carlo method, and the effect of the different parameters on the output spectra is discussed.

Keywords

Cite

@article{arxiv.1204.3289,
  title  = {A Disc-Corona Model for a Rotating Black Hole},
  author = {Xiaolong Gong and Lixin Li and Renyi Ma},
  journal= {arXiv preprint arXiv:1204.3289},
  year   = {2015}
}
R2 v1 2026-06-21T20:49:40.272Z