Anisotropic Galactic Outflows and Enrichment of the Intergalactic Medium. II. Numerical Simulations
arXiv:1002.4881 · doi:10.1088/0004-637X/725/2/2087
Abstract
We combine an analytic model for anisotropic outflows and galaxy formation with numerical simulations of large-scale structure and halo formation to study the impact of galactic outflows on the evolution of the IGM. We have simulated the evolution of a comoving volume (15 Mpc)^3 in the LCDM universe. We follow the formation of 20000-60000 galaxies and simulate the galactic outflows produced by these galaxies, for five outflow opening angles, alpha=60, 90, 120, 150, and 180 degrees (isotropic outflows). Anisotropic outflows follow the path of least resistance and thus travel preferentially into low-density regions, away from cosmological structures where galaxies form. These anisotropic outflows are less likely to overlap with one another, or to hit pre-galactic collapsing halos and strip them of their gas, preventing a galaxy from forming. Going from 180 deg to 60 deg, the number of galaxies that actually form doubles, producing twice as many outflows, and these outflows overlap to a lesser extent. As a result, the metal volume filling factor of the IGM goes from 8% for isotropic outflows up to 28% for anisotropic ones. High density regions are more efficiently enriched than low density ones (~80% compared to ~20% by volume), even though most enriched regions are low densities. Increasing the anisotropy of outflows increases the extent of enrichment at all densities, low and high. This is in part because anisotropic outflows are more numerous. When this effect is factored-out, we find that the probability a galaxy will enrich systems at densities up to 10 rho_mean is higher for increasingly anisotropic outflows. This is an effect of the dynamical evolution of the IGM. Anisotropic outflows expand preferentially into underdense gas, but that gas can later accrete onto overdense structures.
Submitted to ApJ. Figures 4, 5 and 6 are not included because of their large sizes. They can be downloaded from: http://www.astro.phy.ulaval.ca/staff/hugo/web_out/figures456.tar.gz
References in corpus (14)
- Wilkinson Microwave Anisotropy Probe (WMAP) Three Year Results: Implications for Cosmology
- Cosmological Simulations of Intergalactic Medium Enrichment from Galactic Outflows
- The stellar mass assembly of galaxies from z=0 to z=4. Analysis of a sample selected in the rest-frame near-infrared with Spitzer
- Feedback and Recycled Wind Accretion: Assembling the z=0 Galaxy Mass Function
- The Galaxy Mass Function up to z=4 in the GOODS-MUSIC sample: into the epoch of formation of massive galaxies
- The star formation histories of galaxies in the Sloan Digital Sky Survey
- The stellar masses of 25000 galaxies at 0.2<z<1.0 estimated by the COMBO-17 survey
- On the galaxy stellar mass function, the mass-metallicity relation, and the implied baryonic mass function
- Metallicity of the intergalactic medium using pixel statistics: IV. Oxygen
- Two Disk Components from a Gas Rich Disk-Disk Merger
- The Composite Spectrum of Strong Lyman-alpha Forest Absorbers
- Anisotropic AGN Outflows and Enrichment of the Intergalactic Medium
- Anisotropic Galactic Outflows and Enrichment of the Intergalactic Medium. I: Monte Carlo Simulations
- A Search for Oxygen in the Low-Density Lyman-alpha Forest Using the Sloan Digital Sky Survey
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- Account of the baryonic feedback effect in gamma-ray measurements of intergalactic magnetic fields
- Galactic Outflows and Evolution of the Interstellar Medium