English

FIRE in the Field: Simulating the Threshold of Galaxy Formation

Astrophysics of Galaxies 2017-10-03 v2 Cosmology and Nongalactic Astrophysics

Abstract

We present a suite of 15 cosmological zoom-in simulations of isolated dark matter halos, all with masses of Mhalo1010MM_{\rm halo} \approx 10^{10}\,{\rm M}_\odot at z=0z=0, in order to understand the relationship between halo assembly, galaxy formation, and feedback's effects on the central density structure in dwarf galaxies. These simulations are part of the Feedback in Realistic Environments (FIRE) project and are performed at extremely high resolution. The resultant galaxies have stellar masses that are consistent with rough abundance matching estimates, coinciding with the faintest galaxies that can be seen beyond the virial radius of the Milky Way (M/M105107M_\star/{\rm M}_\odot\approx 10^5-10^7). This non-negligible spread in stellar mass at z=0z=0 in halos within a narrow range of virial masses is strongly correlated with central halo density or maximum circular velocity VmaxV_{\rm max}. Much of this dependence of MM_\star on a second parameter (beyond MhaloM_{\rm halo}) is a direct consequence of the Mhalo1010MM_{\rm halo}\sim10^{10}\,{\rm M}_\odot mass scale coinciding with the threshold for strong reionization suppression: the densest, earliest-forming halos remain above the UV-suppression scale throughout their histories while late-forming systems fall below the UV-suppression scale over longer periods and form fewer stars as a result. In fact, the latest-forming, lowest-concentration halo in our suite fails to form any stars. Halos that form galaxies with M2×106MM_\star\gtrsim2\times10^{6}\,{\rm M}_\odot have reduced central densities relative to dark-matter-only simulations, and the radial extent of the density modifications is well-approximated by the galaxy half-mass radius r1/2r_{1/2}. This apparent stellar mass threshold of M2×1062×104MhaloM_\star \approx 2\times 10^{6} \approx 2\times 10^{-4} \,M_{\rm halo} is broadly consistent with previous work and provides a testable prediction of FIRE feedback models in LCDM.

Keywords

Cite

@article{arxiv.1611.02281,
  title  = {FIRE in the Field: Simulating the Threshold of Galaxy Formation},
  author = {Alex Fitts and Michael Boylan-Kolchin and Oliver D. Elbert and James S. Bullock and Philip F. Hopkins and Jose Onorbe and Andrew R. Wetzel and Coral Wheeler and Claude-Andre Faucher-Giguere and Dusan Keres and Evan D. Skillman and Daniel R. Weisz},
  journal= {arXiv preprint arXiv:1611.02281},
  year   = {2017}
}

Comments

16 pages, 16 figures; matches version published in MNRAS