On the stability of isothermal shocks in black hole accretion disks
arXiv:2112.01665 · doi:10.1093/mnras/stac731
Abstract
Most black holes possess accretion disks. Models of such disks inform observations and constrain the properties of the black holes and their surrounding medium. Here, we study isothermal shocks in a thin black hole accretion flow. Modelling infinitesimal molecular viscosity allows the use of multiple-scales matched asymptotic methods. We thus derive the first explicit calculations of isothermal shock stability. We find that the inner shock is always unstable, and the outer shock is always stable. The growth/decay rates of perturbations depend only on an effective potential and the incoming--outgoing flow difference at the shock location. We give a prescription of accretion regimes in terms of angular momentum and black hole radius. Accounting for angular momentum dissipation implies unstable outer shocks in much of parameter space, even for realistic viscous Reynolds numbers of the order .
26 pages
References in corpus (5)
- Cygnus X-1 contains a 21-solar mass black hole -- implications for massive star winds
- General Relativistic Hydrodynamic Simulations and Linear Analysis of the Standing Accretion Shock Instability around a Black Hole
- Dynamical Structure of Viscous Accretion Disks with Shocks
- Dissipative advective accretion disc solutions with variable adiabatic index around black holes
- Properties of magnetically supported dissipative accretion flow around black holes with cooling effects