Investigating the Physics and Environment of Lyman Limit Systems in Cosmological Simulations
Abstract
In this work, I investigate the properties of Lyman limit systems (LLSs) using state-of-the-art zoom-in cosmological galaxy formation simulations with on the fly radiative transfer, which includes both the cosmic UV background (UVB) and local stellar sources. I compare the simulation results to observations of the incidence frequency of LLSs and the HI column density distribution function over the redshift range and find good agreement. I explore the connection between LLSs and their host halos and find that LLSs reside in halos with a wide range of halo masses with a nearly constant covering fraction within a virial radius. Over the range , I find that more than half of the LLSs reside in halos with , indicating that absorption line studies of LLSs can probe these low-mass galaxies which H-based star formation models predict to have very little star formation. I study the physical state of individual LLSs and test a simple model (Schaye 2001) which encapsulates many of their properties. I confirm that LLSs have a characteristic absorption length given by the Jeans length and that they are in photoionization equilibrium at low column densities. Finally, I investigate the self-shielding of LLSs to the UVB and explore how the non-sphericity of LLSs affects the photoionization rate at a given . I find that at , LLSs have an optical depth of unity at a column density of and that this is the column density which characterizes the onset of self-shielding.
Keywords
Cite
@article{arxiv.1401.6705,
title = {Investigating the Physics and Environment of Lyman Limit Systems in Cosmological Simulations},
author = {Denis Erkal},
journal= {arXiv preprint arXiv:1401.6705},
year = {2015}
}
Comments
13 pages, 15 figures. Updated to version accepted in MNRAS