Hydrodynamic Simulations of Eccentric Black Hole Encounters in AGN Discs
arXiv:2609.19281
Abstract
We investigate close encounters between stellar-mass black holes (BHs) in the gaseous discs of active galactic nuclei (AGNs), during which binary black holes (BBHs) may form. We perform a suite of 483 2D adiabatic viscous hydrodynamic simulations within a shearing box prescription using the Eulerian grid code Athena++. We co-evolve the two embedded BHs with the gas. To probe the dependence of capture on non-circular initial conditions, we vary the initial radial separation , the eccentricity of one of the stellar BHs around the central supermassive black hole, and the eccentric phase angle . We consider eccentricities from to and compare them with the local disc aspect ratio . We find that small eccentricities shift the capture window in the parameter space. Eccentricities of order the disc aspect ratio, in particular --, produce successful captures at initial separations that do not capture in the circular models. By contrast, systems with retain less gas before encounter and have lower capture fractions across the sampled parameter grid. We find that the first periapsis distance is a useful predictor of direct capture. Predicting direct capture for correctly classifies of Hill sphere encounters. The Hill sphere gas mass helps identify gas-poor failures, but provides no clear additional capture boundary within this suite, in which the initial disc density, temperature, and viscosity parameter are held fixed. Pre-encounter eccentricity modifies gas-assisted BBH formation through its combined effects on the first-encounter geometry and the gas reservoir available for orbital energy dissipation.
15 pages, 10 figures, submitted to MNRAS