English

A new parameterization of the star formation rate-dense gas mass relation: embracing gas density gradients

Astrophysics of Galaxies 2020-11-11 v1

Abstract

It is well-established that a gas density gradient inside molecular clouds and clumps raises their star formation rate compared to what they would experience from a gas reservoir of uniform density. This effect should be observed in the relation between dense-gas mass MdgM_{dg} and star formation rate SFRSFR of molecular clouds and clumps, with steeper gas density gradients yielding higher SFR/MdgSFR/M_{dg} ratios. The content of this paper is two-fold. Firstly, we build on the notion of magnification factor introduced by Parmentier (2019) to redefine the dense-gas relation (i.e. the relation between MdgM_{dg} and SFRSFR). Not only does the SFR/MdgSFR/M_{dg} ratio depend on the mean free-fall time of the gas and on its (intrinsic) star formation efficiency per free-fall time, it also depends on the logarithmic slope p-p of the gas density profile and on the relative extent of the constant-density region at the clump center. Secondly, we show that nearby molecular clouds follow the newly-defined dense-gas relation, provided that their dense-gas mass is defined based on a volume density criterion. We also find the same trend for the dense molecular clouds of the Central Molecular Zone (CMZ) of the Galaxy, although this one is scaled down by a factor of 1010 compared to nearby clouds. The respective locii of both nearby and CMZ clouds in the (p,SFR/Mdg)(p, SFR/M_{dg}) parameter space is discussed.

Keywords

Cite

@article{arxiv.2009.10652,
  title  = {A new parameterization of the star formation rate-dense gas mass relation: embracing gas density gradients},
  author = {G. Parmentier and A. Pasquali},
  journal= {arXiv preprint arXiv:2009.10652},
  year   = {2020}
}

Comments

12 pages, 7 figures, accepted for publication in ApJ