English

The Dragon-II simulations -- I. Evolution of single and binary compact objects in star clusters with up to 1 million stars

Astrophysics of Galaxies 2023-07-12 v1

Abstract

We present the first results of the \textsc{Dragon-II} simulations, a suite of 19 NN-body simulations of star clusters with up to 10610^6 stars, with up to 33%33\% of them initially paired in binaries. In this work, we describe the main evolution of the clusters and their compact objects (COs). All \textsc{Dragon-II} clusters form in their centre a black hole (BH) subsystem with a density 1010010-100 times larger than the stellar density, with the cluster core containing 5080%50-80\% of the whole BH population. In all models, the BH average mass steeply decreases as a consequence of BH burning, reaching values mBH<15\langle m_{\rm BH}\rangle < 15 M_\odot within 103010-30 relaxation times. Generally, our clusters retain only BHs lighter than 3030 M_\odot over 3030 relaxation times. Looser clusters retain a higher binary fraction, because in such environments binaries are less likely disrupted by dynamical encounters. We find that BH-main sequence star binaries have properties similar to recently observed systems. Double CO binaries (DCOBs) ejected from the cluster exhibit larger mass ratios and heavier primary masses than ejected binaries hosting a single CO (SCOBs). Ejected SCOBs have BH masses mBH=320m_{\rm BH} = 3-20 M_\odot, definitely lower than those in DCOBs (mBH=10100m_{\rm BH} = 10-100 M_\odot).

Keywords

Cite

@article{arxiv.2307.04805,
  title  = {The Dragon-II simulations -- I. Evolution of single and binary compact objects in star clusters with up to 1 million stars},
  author = {Manuel Arca Sedda and Albrecht W. H. Kamlah and Rainer Spurzem and Mirek Giersz and Peter Berczik and Sara Rastello and Giuliano Iorio and Michela Mapelli and Massimiliano Gatto and Eva K. Grebel},
  journal= {arXiv preprint arXiv:2307.04805},
  year   = {2023}
}

Comments

22 pages, 21 figures, 4 tables. Comments welcome. Submitted to MNRAS