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The time-scale for core collapse in spherical star clusters

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arxiv astro-ph/9606182 v1 pith:LVEJZ7XE submitted 1996-06-30 astro-ph

classification astro-ph
keywords modelscollapseclusterstimeskingnucleirelaxationtime
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abstract

The collapse time for a cluster of equal-mass stars is usually stated to be either 330 central relaxation times ($\trc$) or 12--19 half-mass relaxation times ($\trh$). But the first of these times applies only to the late stages of core collapse, and the second only to low-concentration clusters. To clarify how the time depends on the mass distribution, the Fokker-Planck equation is solved for the evolution of a variety of isotropic cluster models, including King models, models with power-law density cusps of $\rho\sim r^{-\gamma}$, and models with nuclei. High-concentration King models collapse faster than low-concentration models if the time is measured in units of $\trh$, but slower if it is measured in units of $\trc$. Models with cusps evolve faster than King models, but not all of them collapse: those with $0<\gamma<2$ expand because they start with a temperature inversion. Models with nuclei collapse or expand as the nuclei would in isolation if their central relaxation times are short; otherwise their evolution is more complicated. Suggestions are made for how the results can be applied to globular clusters, galaxies, and hypothetical clusters of dark stars in the centers of galaxies.

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  1. RABBITS IV: Stellar feedback and SMBH merging time-scales in the sub-Milky Way mass regime

    astro-ph.GA 2026-07 accept novelty 7.0 of 10

    Stronger stellar feedback lowers central stellar densities in low-mass merger remnants and systematically lengthens SMBH merger delays, yielding a 30–500 Myr spread in post-hardening coalescence times.

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