English

The baryon cycle in modern cosmological hydrodynamical simulations

Astrophysics of Galaxies 2024-07-10 v2

Abstract

In recent years, cosmological hydrodynamical simulations have proven their utility as key interpretative tools in the study of galaxy formation and evolution. In this work, we present a like-for-like comparison between the baryon cycle in three publicly available, leading cosmological simulation suites: EAGLE, IllustrisTNG, and SIMBA. While these simulations broadly agree in terms of their predictions for the stellar mass content and star formation rates of galaxies at z0z\approx0, they achieve this result for markedly different reasons. In EAGLE and SIMBA, we demonstrate that at low halo masses (M200c1011.5MM_{\rm 200c}\lesssim 10^{11.5}\, M_{\odot}), stellar feedback (SF)-driven outflows can reach far beyond the scale of the halo, extending up to 23×R200c2-3\times R_{\rm 200c}. In contrast, in TNG, SF-driven outflows, while stronger at the scale of the ISM, recycle within the CGM (within R200cR_{\rm 200c}). We find that AGN-driven outflows in SIMBA are notably potent, reaching several times R200cR_{\rm 200c} even at halo masses up to M200c1013.5MM_{\rm 200c}\approx10^{13.5}\, M_{\odot}. In both TNG and EAGLE, AGN feedback can eject gas beyond R200cR_{\rm 200c} at this mass scale, but seldom beyond 23×R200c2-3\times R_{\rm 200c}. We find that the scale of feedback-driven outflows can be directly linked with the prevention of cosmological inflow, as well as the total baryon fraction of haloes within R200cR_{\rm 200c}. This work lays the foundation to develop targeted observational tests that can discriminate between feedback scenarios, and inform sub-grid feedback models in the next generation of simulations.

Keywords

Cite

@article{arxiv.2402.08408,
  title  = {The baryon cycle in modern cosmological hydrodynamical simulations},
  author = {Ruby J. Wright and Rachel S. Somerville and Claudia del P. Lagos and Matthieu Schaller and Romeel Davé and Daniel Anglés-Alcázar and Shy Genel},
  journal= {arXiv preprint arXiv:2402.08408},
  year   = {2024}
}

Comments

20 pages, 8 figures. Accepted for publication in MNRAS 03/07/24