English

Modeling The Star Forming Universe at z=2: Impact of Cold Accretion Flows

Astrophysics 2015-05-13 v2

Abstract

We present results of a semi-analytic model (SAM) that includes cold accretion and a porosity-based prescription for star formation. We can recover the puzzling observational results of low V/σV/\sigma seen in various massive disk or disk-like galaxies, if we allow 18 % of the accretion energy from cold flows to drive turbulence in gaseous disks at z=2z=2. The increase of gas mass through cold flows is by itself not sufficient to increase the star formation rate sufficiently to recover the number density of M˙>120\dot{M}_*>120 M_{\odot} yr1^{-1} galaxies in our model. In addition, it is necessary to increase the star formation efficiency. This can be achieved naturally in the porosity model, where star formation efficiency scales σ\propto \sigma, which scales as cloud velocity dispersion. As cold accretion is the main driver for gas velocity dispersion in our model, star formation efficiency parallels cold accretion rates, and allows fast conversion into stars. At z2z\sim 2, we find a space density  104~10^{-4} Mpc3^{-3} in star-forming galaxies with M˙>120\dot{M}_*>120 M_{\odot} yr1^{-1}, in better agreement than earlier estimates form SAMs. However, the fundamental relation between M˙\dot{M}_* and MM_* is still offset from the observed relation, indicating the need for possibly more efficient star formation at high z perhaps associated with a role for AGN triggering.

Keywords

Cite

@article{arxiv.0812.1183,
  title  = {Modeling The Star Forming Universe at z=2: Impact of Cold Accretion Flows},
  author = {S. Khochfar and J. Silk},
  journal= {arXiv preprint arXiv:0812.1183},
  year   = {2015}
}

Comments

Replaced by ApJL accepted version, includes various comments from the referee, high-resolution figures available from [email protected]