English

The Three Hundred Project: The gas disruption of infalling objects in cluster environments

Astrophysics of Galaxies 2021-01-07 v1 Cosmology and Nongalactic Astrophysics

Abstract

We analyse the gas content evolution of infalling haloes in cluster environments from THE THREE HUNDRED project, a collection of 324 numerically modelled galaxy clusters. The haloes in our sample were selected within 5R2005R_{200} of the main cluster halo at z=0z=0 and have total halo mass M2001011h1MM_{200}\geq10^{11} h^{-1} M_{\odot}. We track their main progenitors and study their gas evolution since their crossing into the infall region, which we define as 14R2001-4R_{200}. Studying the radial trends of our populations using both the full phase space information and a line-of-sight projection, we confirm the Arthur et al. (2019) result and identify a characteristic radius around 1.7R2001.7R_{200} in 3D and at R200R_{200} in projection at which infalling haloes lose nearly all of the gas prior their infall. Splitting the trends by subhalo status we show that subhaloes residing in group-mass and low-mass host haloes in the infall region follow similar radial gas-loss trends as their hosts, whereas subhaloes of cluster-mass host haloes are stripped of their gas much further out. Our results show that infalling objects suffer significant gaseous disruption that correlates with time-since-infall, cluster-centric distance and host mass, and that the gaseous disruption they experience is a combination of subhalo pre-processing and object gas depletion at a radius which behaves like an accretion shock.

Keywords

Cite

@article{arxiv.2101.01734,
  title  = {The Three Hundred Project: The gas disruption of infalling objects in cluster environments},
  author = {Robert Mostoghiu and Jake Arthur and Frazer R. Pearce and Meghan Gray and Alexander Knebe and Weiguang Cui and Charlotte Welker and Sofía A. Cora and Giuseppe Murante and Klaus Dolag and Gustavo Yepes},
  journal= {arXiv preprint arXiv:2101.01734},
  year   = {2021}
}

Comments

accepted for publication in MNRAS; 13 pages, 10 figures