Bimodal gas accretion in the Horizon-MareNostrum galaxy formation simulation
P. Ocvirk, C. Pichon, R. Teyssier

TL;DR
This study uses high-resolution cosmological simulations to analyze the thermal states of gas accretion onto galaxies, identifying transition masses for hot shock formation and cold stream disappearance across redshifts.
Contribution
It introduces two new measurements of gas accretion modes in simulations, refining the understanding of hot and cold accretion transition masses and their redshift evolution.
Findings
Hot shock transition mass Mshock ≈ 10^{11.6} Msun with no significant redshift evolution.
Cold streams disappear at a transition mass Mstream that increases sharply with redshift.
Results align with analytical models when assuming low metallicity in filaments.
Abstract
(abridged) The physics of diffuse gas accretion and the properties of the cold and hot modes of accretion onto proto-galaxies between z=2 and z=5.4 is investigated using the large cosmological simulation performed with the RAMSES code on the MareNostrum supercomputing facility. Galactic winds, chemical enrichment, UV background heating and radiative cooling are taken into account in this very high resolution simulation. Using accretion--weighted temperature histograms, we have perfomed two different measurements of the thermal state of the gas accreted towards the central galaxy. The first measurement, performed using accretion--weighted histograms on a spherical surface of radius 0.2 Rvir centred on the densest gas structure near the halo centre of mass, is a good indicator of the presence of an accretion shock in the vicinity of the galactic disc. We define the hot shock mass, Mshock,…
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Taxonomy
TopicsGalaxies: Formation, Evolution, Phenomena · Astrophysics and Star Formation Studies · Phase Equilibria and Thermodynamics
