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Testing Feedback-regulated Star Formation in Gas-rich, Turbulent Disk Galaxies

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posted on 2024-07-26, 14:47 authored by Deanne FisherDeanne Fisher, A. D. Bolatto, H. White, Karl GlazebrookKarl Glazebrook, R. G. Abraham, D. Obreschkow
In this paper we compare the molecular gas depletion times and midplane hydrostatic pressure in turbulent, star-forming disk galaxies to internal properties of these galaxies. For this analysis we use 17 galaxies from the DYNAMO sample of nearby (z ∼ 0.1) turbulent disks. We find a strong correlation, such that galaxies with lower molecular gas depletion time (t dep) have higher gas velocity dispersion (σ). Within the scatter of our data, our observations are consistent with the prediction that made in theories of feedback-regulated star formation. We also show a strong, single power-law correlation between midplane pressure (P) and star formation rate surface density (ΣSFR), which extends for 6 orders of magnitude in pressure. Disk galaxies with lower pressure are found to be roughly in agreement with theoretical predictions. However, in galaxies with high pressure we find P/ΣSFR values that are significantly larger than theoretical predictions. Our observations could be explained with any of the following: (1) the correlation of ΣSFR-P is significantly sublinear; (2) the momentum injected from star formation feedback (p ∗/m ∗) is not a single, universal value; or (3) alternate sources of pressure support are important in gas-rich disk galaxies. Finally, using published survey results, we find that our results are consistent with the cosmic evolution of t dep(z) and σ(z). Our interpretation of these results is that the cosmic evolution of t dep may be regulated not just by the supply of gas but also by the internal regulation of star formation via feedback.

Funding

Investigating Rosetta Stones of galaxy formation

Australian Research Council

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Look closer: transforming the view of clumpy, turbulent galaxies

Australian Research Council

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ISSN

1538-4357

Journal title

Astrophysical Journal

Volume

870

Issue

1

Article number

article no. 46

Pagination

46-

Publisher

American Astronomical Society

Copyright statement

Copyright © 2019 The American Astronomical Society. All rights reserved. The published version is reproduced in accordance with the copyright policy of the publisher.

Language

eng

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