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The clustering dynamics of primordial black boles in $N$-body simulations

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arxiv 2006.15018 v2 pith:EW4KQM4M submitted 2020-06-26 astro-ph.CO gr-qc

classification astro-ph.COgr-qc
keywords pbhsmassfindmathrmodotblackbinarybody
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abstract

We explore the possibility that Dark Matter (DM) may be explained by a non-uniform background of approximately stellar-mass clusters of Primordial Black Holes (PBHs), by simulating the evolution them from recombination to the present with over 5000 realisations using a Newtonian $ N $-body code. We compute the cluster rate of evaporation, and extract the binary and merged sub-populations along with their parent and merger tree histories, lifetimes and formation rates; the dynamical and orbital parameter profiles, the degree of mass segregation and dynamical friction, and power spectrum of close encounters. Overall, we find that PBHs can constitute a viable DM candidate, and that their clustering presents a rich phenomenology throughout the history of the Universe. We show that binary systems constitute about 9.5\% of all PBHs at present, with mass ratios of $ \bar{q}_{\rm B} = 0.154 $, and total masses of $ \bar{m}_{\rm T,\,B} = 303\,M_\odot$. Merged PBHs are rare, about 0.0023\% of all PBHs at present, with mass ratios of $ \bar{q}_{\rm B}= 0.965 $ with total and chirp masses of $ \bar{m}_{\rm T,\,B}= 1670\,M_\odot$ and $ \bar{m}_{c,{\rm M}} = 642\,M_\odot $ respectively. We find that cluster puffing up and evaporation leads to bubbles of these PBHs of order 1 kpc containing at present times about 36\% of objects and mass, with hundred pc sized cores. We also find that these PBH sub-haloes are distributed in wider PBH haloes of order hundreds of kpc, containing about 63\% of objects and mass, coinciding with the sizes of galactic halos. We find at last high rates of close encounters of massive Black Holes ($ M \sim 1000\,M_\odot$), with $ \Gamma^{\mathrm{S}} = (1.2^{+5.9}_{-0.9}) \times 10^{7} \mathrm{yr^{-1} Gpc^{-3}}$ and mergers with $\Gamma^{\mathrm{M}} = 1337 \pm 41 \mathrm{yr^{-1} Gpc^{-3}} $.

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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. Evolution of a black hole cluster in full general relativity

    gr-qc 2025-05 conditional novelty 8.0 of 10

    A 25-black-hole cluster evolved in full general relativity undergoes runaway hierarchical merging into a single roughly 22m0 black hole, ejects one member at 0.51c, and produces a gravitational-wave signal with an ecc...

  2. Directional Neutrino Bursts from Spinning and Moving Primordial Black Holes

    astro-ph.CO 2025-07 reject novelty 4.0 of 10

    The paper claims spinning, fast-moving primordial black holes produce collimated high-energy neutrino bursts that IceCube and KM3NeT could detect, and asserts new abundance constraints from their non-observation.

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