English

Regulation of star formation by large scale gravito-turbulence

Astrophysics of Galaxies 2021-12-14 v2

Abstract

A simple model for star formation based on supernova (SN) feedback and gravitational heating via the collapse of perturbations in gravitationally unstable disks reproduces the Schmidt-Kennicutt relation between the star formation rate (SFR) per unit area, ΣSFR\Sigma_{SFR}, and the gas surface density, Σg\Sigma_g, remarkably well. The gas velocity dispersion, σg\sigma_g, is derived self-consistently in conjunction with ΣSFR\Sigma_{SFR} and is found to match the observations. Gravitational instability triggers {"gravito-turbulence"} at the scale of the least stable perturbation mode, boosting σg\sigma_g at Σg>Σgthr=50Mpc2\Sigma_g> \, \Sigma_g^\textrm{thr}=50\, {\rm M}_\odot\, {\rm pc}^{-2}, and contributing to the pressure needed to carry the disk weight vertically. ΣSFR\Sigma_{SFR} is reduced to the observed level at Σg>Σgthr \Sigma_g > \Sigma_g^\textrm{thr}, whereas at lower surface densities, SN feedback is the prevailing energy source. Our proposed star formation recipes require efficiencies of order 1\%, and the Toomre parameter, QQ, for the joint gaseous and stellar disk is predicted to be close to the critical value for marginal stability for Σg<Σgthr\Sigma_g< \, \Sigma_g^\textrm{thr}, spreading to lower values and larger gas velocity dispersion at higher Σg\Sigma_g.

Keywords

Cite

@article{arxiv.2110.13922,
  title  = {Regulation of star formation by large scale gravito-turbulence},
  author = {Adi Nusser and Joseph Silk},
  journal= {arXiv preprint arXiv:2110.13922},
  year   = {2021}
}

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