English

Evolution of cold streams in hot gaseous halos

Astrophysics of Galaxies 2024-03-14 v1

Abstract

In the prevailing model of galaxy formation and evolution, the process of gas accretion onto central galaxies undergoes a transition from cold-dominated to hot-dominated modes. This shift occurs when the mass of the parent dark matter halos exceeds a critical threshold known as MshockM_{shock}. Moreover, cold gas usually flows onto central galaxies through filamentary structures, currently referred to as cold streams. However, the evolution of cold streams in halos with masses around MshockM_{shock}, particularly how they are disrupted, remains unclear. To address this issue, we conduct a set of idealised hydrodynamic simulations. Our simulations show that (1) for a gas metallicity Z=0.0010.1ZZ=0.001-0.1Z_{\odot}, cold stream with an inflow rate 3M/yr\sim 3\, \rm{M_{\odot}}/yr per each can persist and effectively transport cold and cool gas to the central region (<0.2< 0.2 virial radius) in halos with mass 1012M10^{12}\, \rm{M_{\odot}}, but is disrupted at a radius around 0.20.2 virial radius due to compression heating for halos with mass 3×1012M3 \times 10^{12}\, \rm{M_{\odot}}. (2) At z2z\sim 2, the maximum halo mass that capable of hosting and sustaining cold streams MstreamM_{stream} is between 1×1012M1\times 10^{12} \rm{M_{\odot}} and 1.5×1012M1.5\times 10^{12}\rm{M_{\odot}} for gas metallicity Z=0.001ZZ=0.001Z_{\odot}, while for a higher gas metallicity Z=0.1ZZ=0.1Z_{\odot}, this value increases to 1.5×1012M\sim 1.5\times 10^{12}\rm{M_{\odot}}. (3) The evolution and ultimate fate of cold streams are determined primarily by the rivalry between radiative cooling and compression. Stronger heating due to compression in halos more massive than MstreamM_{stream} can surpass cooling and heat the gas in cold streams to the hot (106\geq 10^6\, K) phase.

Keywords

Cite

@article{arxiv.2403.08631,
  title  = {Evolution of cold streams in hot gaseous halos},
  author = {WenSheng Hong and Weishan Zhu and TianRui Wang and Xiaohu Yang and LongLong Feng},
  journal= {arXiv preprint arXiv:2403.08631},
  year   = {2024}
}

Comments

26 pages, 18 figures, accepted for publication in MNRAS

R2 v1 2026-06-28T15:18:53.419Z