English

Accretion-Driven Turbulence in the Circumgalactic Medium

Astrophysics of Galaxies 2026-05-13 v2

Abstract

Simulations suggest that turbulence is ubiquitous in the circumgalactic medium (CGM), though the source and properties of CGM turbulence is uncertain. Using analytic considerations and hydrodynamic simulations we study how CGM turbulence is driven by gas accretion, thus providing a baseline for additional turbulence driving processes such as galaxy feedback. We demonstrate that in halos with mass 10101012M\sim 10^{10}-10^{12} M_{\odot} at 0<z<20 < z < 2, accretion amplifies mild turbulent velocities near the virial radius of σt(Rvir)10kms1\sigma_t(R_{\rm vir}) \sim 10 \, {\rm km \, s^{-1}} to virial velocities at inner CGM radii, σt(0.1Rvir)vvir100kms1\sigma_t(0.1 R_{\rm vir}) \approx v_{\rm vir} \sim 100 \, {\rm km \, s^{-1}}. Rapid cooling at these inner radii further implies that thermal pressure support is small, and the gas is dominated by the cool and warm (104105K\sim 10^4-10^5 \, {\rm K}) phases. Inner CGM energetics in these halos is thus dominated by turbulence, with gas density distributions and velocity structure functions similar to those seen in simulations of isothermal supersonic turbulence, rather than those seen in subsonically turbulent stratified media such as the ICM. The accretion rate in these systems is regulated by the turbulence dissipation rate, in contrast with being regulated by the cooling rate as in more massive halos. We argue that galaxy feedback is unlikely to qualitatively change our conclusions unless it significantly depletes the CGM or continuously injects high specific energy material (vvir2\gg v^2_{\rm vir}). Such `turbulence-dominated' CGM can be identified in observations via the predicted wide lognormal ionization distributions and large velocity dispersions in UV absorption spectra.

Keywords

Cite

@article{arxiv.2510.27678,
  title  = {Accretion-Driven Turbulence in the Circumgalactic Medium},
  author = {Roy Goldner and Jonathan Stern and Drummond Fielding and Claude-André Faucher-Giguère and Yakov Faerman and Aharon Kakoly},
  journal= {arXiv preprint arXiv:2510.27678},
  year   = {2026}
}

Comments

21 pages, 16 figures, submitted to MNRAS, Accepted to MNRAS. Minor changes following a positive referee report

R2 v1 2026-07-01T07:16:01.174Z