English

Small-scale inviscid accretion discs around black holes

Astrophysics 2009-10-31 v2

Abstract

Gas falling quasi-spherically onto a black hole forms an inner accretion disc if its specific angular momentum ll exceeds \lminrgc\lmin\sim r_gc where rgr_g is the Schwarzschild radius. The standard disc model assumes l\lminl\gg\lmin. We argue that, in many black-hole sources, accretion flows have angular momenta just above the threshold for disc formation, l\simgt\lminl\simgt\lmin, and assess the accretion mechanism in this regime. In a range \lmin<l<\lcr\lmin<l<\lcr, a small-scale disc forms in which gas spirals fast into the black hole without any help of horizontal viscous stresses. Such an `inviscid' disc, however, interacts inelastically with the feeding infall. The disc-infall interaction determines the dynamics and luminosity of the accretion flow. The inviscid disc radius can be as large as 14rg14 r_g, and the energy release peaks at 2rg2r_g. The disc emits a Comptonized X-ray spectrum with a break at 100\sim 100 keV. This accretion regime is likely to take place in wind-fed X-ray binaries and is also possible in active galactic nuclei.

Keywords

Cite

@article{arxiv.astro-ph/0006351,
  title  = {Small-scale inviscid accretion discs around black holes},
  author = {Andrei M. Beloborodov and Andrei F. Illarionov},
  journal= {arXiv preprint arXiv:astro-ph/0006351},
  year   = {2009}
}

Comments

10 pages, accepted to MNRAS