Physical properties of molecular clouds for the entire Milky Way disk
Abstract
This study presents a catalog of 8107 molecular clouds that covers the entire Galactic plane and includes 98% of the CO emission observed within . The catalog was produced using a hierarchical cluster identification method applied to the result of a Gaussian decomposition of the Dame et al. data. The total H mass in the catalog is , in agreement with previous estimates. We find that 30% of the sight lines intersect only a single cloud, with another 25% intersecting only two clouds. The most probable cloud size is pc. We find that , with no correlation between the cloud surface density, , and . In contrast with the general idea, we find a rather large range of values of , from 2 to pc, and a systematic decrease with increasing Galactic radius, . The cloud velocity dispersion and the normalization both decrease systematically with . When studied over the whole Galactic disk, there is a large dispersion in the line width-size relation, and a significantly better correlation between and . The normalization of this correlation is constant to better than a factor of two for kpc. This relation is used to disentangle the ambiguity between near and far kinematic distances. We report a strong variation of the turbulent energy injection rate. In the outer Galaxy it may be maintained by accretion through the disk and/or onto the clouds, but neither source can drive the 100 times higher cloud-averaged injection rate in the inner Galaxy.
Keywords
Cite
@article{arxiv.1610.05918,
title = {Physical properties of molecular clouds for the entire Milky Way disk},
author = {Marc-Antoine Miville-Deschênes and Norman Murray and Eve J. Lee},
journal= {arXiv preprint arXiv:1610.05918},
year = {2017}
}
Comments
31 pages, accepted by ApJ