English

Modeling Emission-Line Surface Brightness in a Multiphase Galactic Wind: An O VI Case Study

Astrophysics of Galaxies 2026-05-06 v2

Abstract

We present a fast and robust analytic framework for predicting surface brightness (SB) of emission lines in galactic winds as a function of radius up to 100\sim 100 kpc out in the circum-galactic medium. We model multiphase structure in galactic winds by capturing emission from both the volume-filling hot phase (T 1067\sim 10^{6-7} K) and turbulent radiative mixing layers that host intermediate temperature gas at the boundaries of cold clouds (T 104\sim 10^4 K). Our multiphase framework makes significantly different predictions of emission signatures compared to traditional single-phase models and explains the paucity of OVI SB measurements in the literature. After accounting for ram pressure equilibrium between the cold clouds and hot wind in supersonic outflows, non-equilibrium ionization effects, and energy budgets other than mechanical energy from core-collapse supernovae, our OVI SB predictions qualitatively match observational results. Our framework provides constraints on the optimal galactic wind properties that facilitate OVI emission observations, including star formation rate surface density, hot phase mass loading factor, and thermalization efficiency factor. These constraints are consistent with existing observations and can help inform future target selections.

Keywords

Cite

@article{arxiv.2510.02443,
  title  = {Modeling Emission-Line Surface Brightness in a Multiphase Galactic Wind: An O VI Case Study},
  author = {Zirui Chen and Zixuan Peng and Kate H. R. Rubin and Timothy M. Heckman and Matthew J. Hayes and Yakov Faerman and Crystal L. Martin and S. Peng Oh and Drummond B. Fielding},
  journal= {arXiv preprint arXiv:2510.02443},
  year   = {2026}
}

Comments

19 pages, 15 figures. Accepted for publication in MNRAS, 27 March 2026. Zirui Chen and Zixuan Peng are co-first authors who made equal contributions to this work

R2 v1 2026-07-01T06:14:08.928Z