English

The Maximum Stellar Surface Density Due to the Failure of Stellar Feedback

Astrophysics of Galaxies 2019-01-09 v1

Abstract

A maximum stellar surface density Σmax3×105Mpc2\Sigma_{max} \sim 3 \times 10^5\,{\rm M_\odot\,pc^{-2}} is observed across all classes of dense stellar systems (e.g. star clusters, galactic nuclei, etc.), spanning 8\sim 8 orders of magnitude in mass. It has been proposed that this characteristic scale is set by some dynamical feedback mechanism preventing collapse beyond a certain surface density. However, simple analytic models and detailed simulations of star formation moderated by feedback from massive stars argue that feedback becomes {\it less} efficient at higher surface densities (with the star formation efficiency increasing as Σ/Σcrit\sim \Sigma/\Sigma_{crit}). We therefore propose an alternative model wherein stellar feedback becomes ineffective at moderating star formation above some Σcrit\Sigma_{crit}, so the supply of star-forming gas is rapidly converted to stars before the system can contract to higher surface density. We show that such a model -- with Σcrit\Sigma_{crit} taken directly from the theory -- naturally predicts the observed Σmax\Sigma_{max}. Σmax100Σcrit\Sigma_{max}\sim 100\Sigma_{crit} because the gas consumption time is longer than the global freefall time even when feedback is ineffective. Moreover the predicted Σmax\Sigma_{max} is robust to spatial scale and metallicity, and is preserved even if multiple episodes of star formation/gas inflow occur. In this context, the observed Σmax\Sigma_{max} directly tells us where feedback fails.

Keywords

Cite

@article{arxiv.1804.04137,
  title  = {The Maximum Stellar Surface Density Due to the Failure of Stellar Feedback},
  author = {Michael Y. Grudić and Philip F. Hopkins and Eliot Quataert and Norman Murray},
  journal= {arXiv preprint arXiv:1804.04137},
  year   = {2019}
}

Comments

5 pages, 5 figures. Submitted to MNRAS. Comments welcome!