Dynamical double black holes and their host cluster properties
Debatri Chattopadhyay, Jarrod Hurley, Simon Stevenson, Arihant, Raidani

TL;DR
This study uses N-body simulations to explore how initial cluster properties influence double black hole formation, merger rates, and their observable signatures, revealing key factors like metallicity and density affecting these processes.
Contribution
It introduces a new method to quantify black hole dynamical activity and provides detailed analysis of how cluster initial conditions impact double black hole merger outcomes.
Findings
Cluster metallicity significantly affects cluster lifespan.
Initial half-mass radius influences black hole exchange interactions.
Cluster initial density determines the number of black hole mergers.
Abstract
We investigate the relationship between the global properties of star clusters and their double black hole (DBH) populations. We use the code {\tt NBODY6} to evolve a suite of star cluster models with an initial mass of M and varying initial parameters. We conclude that cluster metallicity plays the most significant role in determining the lifespan of a cluster, while the initial half-mass radius is dominant in setting the rate of BH exchange interactions in the central cluster regions. We find that the mass of interacting BHs, rather than how frequently their interactions with other BHs occur, is more crucial in the thermal expansion and eventual evaporation of the cluster. We formulate a novel approach to easily quantify the degree of BH-BH dynamical activity in each model. We report 12 in-cluster and three out-of-cluster (after ejection from the cluster)…
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