Zooming in on accretion - I. The structure of halo gas
Dylan Nelson, Shy Genel, Annalisa Pillepich, Mark Vogelsberger, Volker, Springel, Lars Hernquist

TL;DR
This study uses high-resolution simulations to analyze the complex thermal and dynamical structure of gas in and around 10^12 solar mass halos at redshift 2, revealing multi-phase components and variable virial shock properties.
Contribution
It provides detailed insights into the multi-scale, multi-phase gas structure and the variability of virial shocks in massive halos at high redshift, highlighting resolution effects and complex gas interactions.
Findings
Gas in halos shows complex, multi-scale structures.
Virial shocks vary in position and strength across directions.
Cold gas persists around massive halos at z=2.
Abstract
We study the properties of gas in and around 10^12 solar mass halos at z=2 using a suite of high-resolution cosmological hydrodynamic 'zoom' simulations. We quantify the thermal and dynamical structure of these gaseous reservoirs in terms of their mean radial distributions and angular variability along different sightlines. With each halo simulated at three levels of increasing resolution, the highest reaching a baryon mass resolution of ~10,000 solar masses, we study the interaction of filamentary inflow and the quasi-static hot halo atmosphere. We highlight the discrepancy between the spatial resolution available in the halo gas as opposed to within the galaxy itself, and find that stream morphologies become increasingly complex at higher resolution, with large coherent flows revealing density and temperature structure at progressively smaller scales. Moreover, multiple gas components…
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