English

Under Pressure: Quenching Star Formation in Low-Mass Satellite Galaxies via Stripping

Astrophysics of Galaxies 2016-08-31 v2

Abstract

Recent studies of galaxies in the local Universe, including those in the Local Group, find that the efficiency of environmental (or satellite) quenching increases dramatically at satellite stellar masses below ~ 108 M10^8\ {\rm M}_{\odot}. This suggests a physical scale where quenching transitions from a slow "starvation" mode to a rapid "stripping" mode at low masses. We investigate the plausibility of this scenario using observed HI surface density profiles for a sample of 66 nearby galaxies as inputs to analytic calculations of ram-pressure and viscous stripping. Across a broad range of host properties, we find that stripping becomes increasingly effective at M<1089 MM_{*} < 10^{8-9}\ {\rm M}_{\odot}, reproducing the critical mass scale observed. However, for canonical values of the circumgalactic medium density (nhalo<103.5n_{\rm halo} < 10^{-3.5} cm3{\rm cm}^{-3}), we find that stripping is not fully effective; infalling satellites are, on average, stripped of < 40 - 70% of their cold gas reservoir, which is insufficient to match observations. By including a host halo gas distribution that is clumpy and therefore contains regions of higher density, we are able to reproduce the observed HI gas fractions (and thus the high quenched fraction and short quenching timescale) of Local Group satellites, suggesting that a host halo with clumpy gas may be crucial for quenching low-mass systems in Local Group-like (and more massive) host halos.

Keywords

Cite

@article{arxiv.1606.07810,
  title  = {Under Pressure: Quenching Star Formation in Low-Mass Satellite Galaxies via Stripping},
  author = {Sean P. Fillingham and Michael C. Cooper and Andrew B. Pace and Michael Boylan-Kolchin and James S. Bullock and Shea Garrison-Kimmel and Coral Wheeler},
  journal= {arXiv preprint arXiv:1606.07810},
  year   = {2016}
}

Comments

updated version after review, now accepted to MNRAS; Accepted 2016 August 22. Received 2016 August 18; in original form 2016 June 21