Thick Disks, Thin Hopes: Suppressed Capture and Merger Rates in AGN
arXiv:2601.02487 · doi:10.1103/gcwt-rmml
Abstract
Multiple models have been suggested over the years to explain the structure and support of accretion disks around supermassive black holes, from the standard thin thermal-pressure-dominated -disk model to more recent models that describe geometrically thicker radiation or magnetic or turbulence-dominated disks. In any case, objects embedded in the disk (e.g. compact objects, stars, gas, dust) can undergo gravitational and hydrodynamic interactions with each other leading to interesting processes such as binary interaction/capture, gravitational wave merger events, dynamical friction, accretion, gap opening, etc. It has long been argued that disks of active galactic nuclei (AGN) can enhance the rates for many of these events; however, almost all of that analysis has assumed specific thin-disk models (with aspect ratios ). We show here that the rates for processes such as these that are mediated by gravitational cross-sections has a very strong inverse dependence on the thickness (scaling as steeply as ), and can vary in the outer disk (where these processes are often invoked) by factors depending on the assumed source of pressure support in the disk. This predicts rates that can be lower by tens of orders-of-magnitude in some models, demonstrating that it is critical to account for disk parameters such as aspect ratio and different sources of disk pressure when computing any meaningful predictions for these rates. For instance, if magnetic pressure is important in the outer disk, as suggested in recent work, capture rates would be suppressed by factors compared to previous studies where magnetic pressure was ignored.
11 pages, 2 figures. Accepted to Phys. Rev. D
References in corpus (15)
- The AIMSS Project I: Bridging the Star Cluster - Galaxy Divide
- Intermediate mass black holes in AGN disks II. Model predictions & observational constraints
- On the rate of black hole binary mergers in galactic nuclei due to dynamical hardening
- Accretion Discs with Strong Toroidal Magnetic Fields
- High accretion rates in magnetised Keplerian discs mediated by a Parker instability driven dynamo
- FORGE'd in FIRE: Resolving the End of Star Formation and Structure of AGN Accretion Disks from Cosmological Initial Conditions
- FORGE'd in FIRE II: The Formation of Magnetically-Dominated Quasar Accretion Disks from Cosmological Initial Conditions
- Nozzle Shocks, Disk Tearing and Streamers Drive Rapid Accretion in 3D GRMHD Simulations of Warped Thin Disks
- Magnetized Accretion onto and Feedback from Supermassive Black Holes in Elliptical Galaxies
- Hyper-Eddington Black Hole Growth in Star-Forming Molecular Clouds and Galactic Nuclei: Can It Happen?
- H-AMR FORGE'd in FIRE I: Magnetic state transitions, jet launching and radiative emission in super-Eddington, highly magnetized quasar disks formed from cosmological initial conditions
- From Seeds to Supermassive Black Holes: Capture, Growth, Migration, and Pairing in Dense Proto-Bulge Environments
- Zooming In On The Multi-Phase Structure of Magnetically-Dominated Quasar Disks: Radiation From Torus to ISCO Across Accretion Rates
- Multi-Phase Thermal Structure & The Origin of the Broad-Line Region, Torus, and Corona in Magnetically-Dominated Accretion Disks
- Rapid, strongly magnetized accretion in the zero-net-vertical-flux shearing box