Stellar dynamics around a massive black hole - III. Resonant relaxation of razor-thin axisymmetric discs

Loading...
Thumbnail Image

Date

Journal Title

Journal ISSN

Volume Title

Publisher

Oxford University Press

Abstract

We study the resonant relaxation (RR) of an axisymmetric, low-mass (or Keplerian) stellar disc orbiting a more massive black hole (MBH). Our recent work on the general kinetic theory of RR is simplified in the standard manner by the neglect of 'gravitational polarization' and applied to a razor-thin axisymmetric disc. The wake of a stellar orbit is expressed in terms of the angular momenta exchanged with other orbits, and used to derive a kinetic equation for RR under the combined actions of self-gravity, 1 PN and 1.5 PN general relativistic effects of the MBH and an arbitrary external axisymmetric potential. This is a Fokker-Planck equation for the stellar distribution function (DF), wherein the diffusion coefficients are given self-consistently in terms of contributions from apsidal resonances between pairs of stellar orbits. The physical kinetics is studied for the two main cases of interest. (1) 'Lossless' discs in which the MBH is not a sink of stars, and disc mass, angular momentum and energy are conserved: we prove that general H-functions can increase or decrease during RR, but the Boltzmann entropy is (essentially) unique in being a non-decreasing function of time. Therefore, secular thermal equilibria are maximum entropy states, with DFs of the Boltzmann form; the two-ring correlation function at equilibrium is computed. (2) Discs that lose stars to the MBH through an 'empty loss cone': we derive expressions for the MBH feeding rates of mass, angular momentum and energy in terms of the diffusive fluxes at the loss-cone boundaries. © 2016 The Authors Published by Oxford University Press on behalf of the Royal Astronomical Society

Description

Keywords

Galaxies: kinematics and dynamics, Galaxies: nuclei, Galaxy: centre, Angular momentum, Distribution functions, Entropy, Fokker planck equation, Gravitation, Kinetic theory, Orbits, Axisymmetric, Energy, Galaxies:nuclei, Galaxy center, Low-mass, Massive black holes, Stellar disks, Stellar dynamics, Stellar orbits, Stars

Citation

Endorsement

Review

Supplemented By

Referenced By