English

Hot One-Temperature Accretion Flows Around Black Holes

Astrophysics 2016-08-30 v1

Abstract

We describe hot, optically-thin solutions for one-temperature accretion disks around black holes. We include cooling by synchrotron, bremsstrahlung, and Comptonization. Our solutions are thermally and viscously stable, with gas temperatures on the order of T1091010.7T \sim 10^9-10^{10.7}K. The thermal stability is a direct result of the inclusion of synchrotron cooling. The new solution branch is related to the advection-dominated solution for a two-temperature gas described by Narayan \& Yi (1995b). It is present only for mass accretion rates less than some critical M˙crit\dot{M}_{crit} which depends on the radius RR and viscosity parameter α\alpha. The solutions are advection-dominated for extremely low values of M˙\dot{M}. However, for a range of intermediate accretion rates, the new solutions are both hot (T1010T \sim 10^{10}K) and cooling-dominated. Because of this new feature, one-temperature solutions are significantly more luminous than the corresponding two temperature solutions. The radial profile of the new solutions is unusual. The inner parts of the flow are cooling-dominated and have a disk-like geometry, while the outer parts are fully advection-dominated and nearly quasi-spherical.

Keywords

Cite

@article{arxiv.astro-ph/9601074,
  title  = {Hot One-Temperature Accretion Flows Around Black Holes},
  author = {A. A. Esin and R. Narayan and E. Ostriker and I. Yi},
  journal= {arXiv preprint arXiv:astro-ph/9601074},
  year   = {2016}
}

Comments

24 pages tex file and 7 postscript figures all included in one compressed tar file. Accepted for publication in ApJ. In case of problems, write to aidle@cfa160.harvard.edu

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