English

Predicting Stellar-Mass Black Hole Populations in Globular Clusters

Solar and Stellar Astrophysics 2018-09-05 v3 Astrophysics of Galaxies General Relativity and Quantum Cosmology

Abstract

Recent discoveries of black hole (BH) candidates in Galactic and extragalactic globular clusters (GCs) have ignited interest in understanding how BHs dynamically evolve in a GC and the number of BHs (NBHN_{\rm{BH}}) that may still be retained by today's GCs. Numerical models show that even if stellar-mass BHs are retained in today's GCs, they are typically in configurations that are not directly detectable. We show that a suitably defined measure of mass segregation (Δ\Delta) between, e.g., giants and low-mass main-sequence stars, can be an effective probe to indirectly estimate NBHN_{\rm{BH}} in a GC aided by calibrations from numerical models. Using numerical models including all relevant physics we first show that NBHN_{\rm{BH}} is strongly anticorrelated with Δ\Delta between giant stars and low-mass main-sequence stars. We apply the distributions of Δ\Delta vs NBHN_{\rm{BH}} obtained from models to three Milky Way GCs to predict the NBHN_{\rm{BH}} retained by them at present. We calculate Δ\Delta using the publicly available ACS survey data for 47 Tuc, M 10, and M 22, all with identified stellar-mass BH candidates. Using these measured Δ\Delta and distributions of Δ\Delta vs NBHN_{\rm{BH}} from models as calibration we predict distributions for NBHN_{\rm{BH}} expected to be retained in these GCs. For 47 Tuc, M 10, and M 22 our predicted distributions peak at NBH20N_{\rm{BH}}\approx20, 2424, and 5050, whereas, within the 2σ2\sigma confidence level, NBHN_{\rm{BH}} can be up to 150\sim150, 5050, and 200200, respectively.

Keywords

Cite

@article{arxiv.1712.03979,
  title  = {Predicting Stellar-Mass Black Hole Populations in Globular Clusters},
  author = {Newlin C. Weatherford and Sourav Chatterjee and Carl L. Rodriguez and Frederic A. Rasio},
  journal= {arXiv preprint arXiv:1712.03979},
  year   = {2018}
}

Comments

19 pages, 10 figures, 3 tables; accepted for publication to ApJ

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