Star Clusters, Self-Interacting Dark Matter Halos and Black Hole Cusps: The Fluid Conduction Model and its Extension to General Relativity
arXiv:1809.02618 · doi:10.1103/PhysRevD.98.023021
Abstract
We adopt the fluid conduction approximation to study the evolution of spherical star clusters and self-interacting dark matter (SIDM) halos. We also explore the formation and dynamical impact of density cusps that arise in both systems due to the presence of a massive, central black hole. The large N-body, self-gravitating systems we treat are "weakly-collisional": the mean free time between star or SIDM particle collisions is much longer than their characteristic crossing (dynamical) time scale, but shorter than the system lifetime. The fluid conduction model reliably tracks the "gravothermal catastrophe" in star clusters and SIDM halos without black holes. For a star cluster with a massive, central black hole, this approximation reproduces the familiar Bahcall-Wolf quasistatic density cusp for the stars bound to the black hole and shows how the cusp halts the "gravothermal catastrophe" and causes the cluster to re-expand. An SIDM halo with an initial black hole central density spike that matches onto to an exterior NFW profile relaxes to a core-halo structure with a central density cusp determined by the velocity dependence of the SIDM interaction cross section. The success and relative simplicity of the fluid conduction approach in evolving such "weakly-collisional", quasiequilibrium Newtonian systems motivates its extension to relativistic systems. We present a general relativistic extension here.
16 pages, 9 figures
References in corpus (6)
- GW170608: Observation of a 19-solar-mass Binary Black Hole Coalescence
- Stellar remnants in galactic nuclei: mass segregation
- A new Fokker-Planck approach for relaxation-driven evolution of galactic nuclei
- Counting Black Holes: The Cosmic Stellar Remnant Population and Implications for LIGO
- Dark matter annihilation near a black hole: plateau vs. weak cusp
- A new Monte Carlo method for dynamical evolution of non-spherical stellar systems
Cited by in corpus (11)
- Constraining Velocity-dependent Self-Interacting Dark Matter with the Milky Way's dwarf spheroidal galaxies
- Core-collapse, evaporation and tidal effects: the life story of a self-interacting dark matter subhalo
- Gravothermal solutions of SIDM halos: mapping from constant to velocity-dependent cross section
- Astrophysical Tests of Dark Matter Self-Interactions
- Dynamical friction from self-interacting dark matter
- Evolution of a black hole cluster in full general relativity
- The Merger Rate of Black Holes in a Primordial Black Hole Cluster
- Gravothermal Phase Transition, Black Holes and Space Dimensionality
- Dynamical evolution of a cluster of primordial black holes
- Dynamics and merger rate of primordial black holes in a cluster
- Accretion of self-interacting dark matter onto supermassive black holes