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On the Late-Time Evolution of Velocity-Dependent Self-Interacting Dark Matter Halos

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arxiv 2312.09296 v1 pith:LZCFMOOY submitted 2023-12-14 astro-ph.GA hep-ph

classification astro-ph.GAhep-ph
keywords evolutiondarkdeephalosmatterregimecorecore-collapsed
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We study the evolution of isolated self-interacting dark matter (SIDM) halos that undergo gravothermal collapse and are driven deep into the short-mean-free-path regime. We assume spherical Navarro-Frenk-White (NFW) halos as initial conditions and allow for elastic dark matter self-interactions. We discuss the structure of the halo core deep in the core-collapsed regime and how it depends on the particle physics properties of dark matter, in particular, the velocity dependence of the self-interaction cross section. We find an approximate universality deep in this regime that allows us to connect the evolution in the short- and long-mean-free-path regimes, and approximately map the velocity-dependent self-interaction cross sections to constant ones for the full gravothermal evolution. We provide a semi-analytic prescription based on our numerical results for halo evolution deep in the core-collapsed regime. Our results are essential for estimating the masses of the black holes that are likely to be left in the core of SIDM halos.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. A Novel Implementation of Self-Interacting Dark Matter in AREPO

    astro-ph.CO 2026-07 accept novelty 6.5 of 10

    A dedicated-tree Monte-Carlo SIDM module in AREPO-2 conserves energy/momentum under multiple scatters, supports velocity-dependent and inelastic models, and runs with only modest overhead versus CDM except in late cor...

  2. Numerical evolution of self-gravitating halos of self-interacting dark matter

    astro-ph.CO 2025-06 conditional novelty 6.0 of 10

    A new simulation method efficiently evolves spherical self-interacting dark matter halos, reproducing core flattening and gravothermal collapse with orders-of-magnitude less computing power.

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