Revisiting the Velocity Dispersion-Size Relation in Molecular Cloud Structures
Abstract
Structures in molecular ISM are observed to follow a power-law relation between the velocity dispersion and spatial size, known as Larson's first relation, which is often attributed to the turbulent nature of molecular ISM and imprints the dynamics of molecular cloud structures. Using the data from the Milky Way Imaging Scroll Painting survey, we built a sample with 360 structures having relatively accurate distances obtained from either the reddened background stars with Gaia parallaxes or associated maser parallaxes, spanning from to . Using this sample and about 0.3 million pixels, we analyzed the correlations between velocity dispersion, surface/column density, and spatial scales. Our structure-wise results show power-law indices smaller than 0.5 in both the - and - relations. In the pixel-wise results, the is statistically scaling with the beam physical size () in form of . Meanwhile, in the inner Galaxy is statistically larger than the outer side. We also analyzed correlations between and the column density , finding that stops increasing with after . The structures with and without high-column-density () pixels show different relations, where the mean (std) values are and , respectively.
Cite
@article{arxiv.2410.15034,
title = {Revisiting the Velocity Dispersion-Size Relation in Molecular Cloud Structures},
author = {Haoran Feng and Zhiwei Chen and Zhibo Jiang and Yuehui Ma and Yang Yang and Shuling Yu and Dongqing Ge and Wei Zhou and Fujun Du and Chen Wang and Shiyu Zhang and Yang Su and Ji Yang},
journal= {arXiv preprint arXiv:2410.15034},
year = {2024}
}
Comments
23 pages, 12 figures, accepted for publication in Research in Astronomy and Astrophysics