English

The Case for Hot-Mode Accretion in Abell 2029

Astrophysics of Galaxies 2025-12-03 v2

Abstract

Radiative cooling and AGN heating are thought to form a feedback loop that regulates the evolution of low redshift cool-core galaxy clusters. Numerical simulations suggest that formation of multiphase gas in the cluster core imposes a floor on the ratio of cooling time (tcoolt_{\rm cool}) to free-fall time (tfft_{\rm ff}) at min(tcool/tff)10\min ( t_{\rm cool} / t_{\rm ff} ) \approx 10. Observations of galaxy clusters show evidence for such a floor, and usually the cluster cores with min(tcool/tff)30\min ( t_{\rm cool} / t_{\rm ff} ) \lesssim 30 contain abundant multiphase gas. However, there are important outliers. One of them is Abell 2029, a massive galaxy cluster (M2001015M_{200} \gtrsim 10^{15} M_\odot) with min(tcool/tff)20\min( t_{\rm cool}/t_{\rm ff}) \sim 20, but little apparent multiphase gas. In this paper, we present high resolution 3D hydrodynamic AMR simulations of a cluster similar to A2029 and study how it evolves over a period of 1-2 Gyr. Those simulations suggest that Abell 2029 self-regulates without producing multiphase gas because the mass of its central black hole (5×1010M\sim 5\times 10^{10} \, M_\odot) is great enough for Bondi accretion of hot ambient gas to produce enough feedback energy to compensate for radiative cooling.

Keywords

Cite

@article{arxiv.2311.05704,
  title  = {The Case for Hot-Mode Accretion in Abell 2029},
  author = {Deovrat Prasad and G. Mark Voit and Brian W. O'Shea},
  journal= {arXiv preprint arXiv:2311.05704},
  year   = {2025}
}

Comments

8 pages, 5 figures, Published in MNRAS