Observational Evidence of Dynamic Star Formation Rate in Milky Way Giant Molecular Clouds
Abstract
Star formation on galactic scales is known to be a slow process, but whether it is slow on smaller scales is uncertain. We cross-correlate 5469 giant molecular clouds (GMCs) from a new all-sky catalog with 256 star forming complexes (SFCs) to build a sample of 191 SFC-GMC complexes---collections of multiple clouds each matched to 191 SFCs. The total mass in stars harbored by these clouds is inferred from WMAP free-free fluxes. We measure the GMC mass, the virial parameter, the star formation efficiency and the star formation rate per free-fall time . Both and range over 3--4 orders of magnitude. We find that 68.3% of the clouds fall within and about the median. Compared to these observed scatters, a simple model with a time independent that depends on the host GMC properties predicts 0.12-0.24. Allowing for a time-variable , we can recover the large dispersion in the rate of star formation. This strongly suggests that star formation in the Milky Way is a dynamic process on GMC scales. We also show that the surface star formation rate profile of the Milky Way correlates well with the molecular gas surface density profile.
Keywords
Cite
@article{arxiv.1608.05415,
title = {Observational Evidence of Dynamic Star Formation Rate in Milky Way Giant Molecular Clouds},
author = {Eve J. Lee and Marc-Antoine Miville-Deschenes and Norman Murray},
journal= {arXiv preprint arXiv:1608.05415},
year = {2016}
}
Comments
accepted to ApJ; we added a discussion of multi-freefall models of star formation