Introducing the Illustris Project: Simulating the coevolution of dark and visible matter in the Universe
Abstract
We introduce the Illustris Project, a series of large-scale hydrodynamical simulations of galaxy formation. The highest resolution simulation, Illustris-1, covers a volume of , has a dark mass resolution of , and an initial baryonic matter mass resolution of . At gravitational forces are softened on scales of , and the smallest hydrodynamical gas cells have an extent of . We follow the dynamical evolution of resolution elements and in addition passively evolve Monte Carlo tracer particles reaching a total particle count of more than billion. The galaxy formation model includes: primordial and metal-line cooling with self-shielding corrections, stellar evolution, stellar feedback, gas recycling, chemical enrichment, supermassive black hole growth, and feedback from active galactic nuclei. At our simulation volume contains about well-resolved galaxies covering a diverse range of morphologies and colours including early-type, late-type and irregular galaxies. The simulation reproduces reasonably well the cosmic star formation rate density, the galaxy luminosity function, and baryon conversion efficiency at . It also qualitatively captures the impact of galaxy environment on the red fractions of galaxies. The internal velocity structure of selected well-resolved disk galaxies obeys the stellar and baryonic Tully-Fisher relation together with flat circular velocity curves. In the well-resolved regime the simulation reproduces the observed mix of early-type and late-type galaxies. Our model predicts a halo mass dependent impact of baryonic effects on the halo mass function and the masses of haloes caused by feedback from supernova and active galactic nuclei.
Cite
@article{arxiv.1405.2921,
title = {Introducing the Illustris Project: Simulating the coevolution of dark and visible matter in the Universe},
author = {Mark Vogelsberger and Shy Genel and Volker Springel and Paul Torrey and Debora Sijacki and Dandan Xu and Gregory F. Snyder and Dylan Nelson and Lars Hernquist},
journal= {arXiv preprint arXiv:1405.2921},
year = {2015}
}
Comments
32 pages, 26 figures. MNRAS accepted. The official Illustris website can be found at http://www.illustris-project.org