Thinking outside the halo: Tracing the large-scale distribution of diffuse cosmic metals with semi-analytic models
arXiv:1503.07898 · doi:10.1093/mnras/stv653
Abstract
With the installation of the Cosmic Origins Spectrograph on the Hubble Space Telescope, measurements of the metal content of the low redshift intergalactic medium (IGM) are now available. Using a new grid-based model for diffuse gas coupled to the SAGE semi-analytic model of galaxy formation, we examine the impact of supernova feedback on the pollution of the IGM. We consider different assumptions for the reheating and ejection of gas by supernovae and their dependence on galaxy circular velocity and gas surface density. Where metals are present, we find the most likely metallicity to be log(Z/Z) at , consistent with both observations and more sophisticated hydrodynamic simulations. Our model predicts that the regions of the IGM with the highest metallicities will be near galaxies with MM and in environments of densities the mean. We also find that 90% of IGM metals at are ejected by galaxies with stellar masses less than M.
12 pages, 9 figures, accepted MNRAS
References in corpus (8)
- Cosmic Star Formation History
- Cosmological Simulations of Intergalactic Medium Enrichment from Galactic Outflows
- Mass, Metal, and Energy Feedback in Cosmological Simulations
- Detection of hot gas in the filament connecting the clusters of galaxies Abell 222 and Abell 223
- The Properties of Low Redshift Intergalactic O VI Absorbers Determined from High S/N Observations of 14 QSOs with the Cosmic Origins Spectrograph
- New Perspective on Galaxy Outflows From the First Detection of Both Intrinsic and Traverse Metal-Line Absorption
- An X-ray/optical study of the complex dynamics of the core of the massive intermediate-redshift cluster MACSJ0717.5+3745
- Probing large scale filaments with HI and HeII