Dynamical equilibrium in the molecular ISM in 28 nearby star-forming galaxies
Author
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Sun, Jiayi
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Leroy, Adam K.
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Ostriker, Eve
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Hughes, Annie
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Rosolowsky, Erik
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Schruba, Andreas
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Schinnerer, Eva
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Blanc Mendiberri, Guillermo
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Faesi, Christopher
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Kruijssen, J. M. Diederik
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Meidt, Sharon
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Utomo, Dyas
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Bigiel, Frank
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Bolatto, Alberto
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Chevance, Melanie
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Chiang, I-Da
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Dale, Daniel
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Emsellem, Eric
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Glover, Simon
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Grasha, Kathryn
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Henshaw, Jonathan
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Herrera, Cinthya
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Jiménez Donaire, María Jesús
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Lee, Janice
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Pety, Jerome
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Querejeta, Miguel
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Saito, Toshiki
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Sandstrom, Karin
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Usero, Antonio
Admission date
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2020-06-04T21:21:14Z
Available date
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2020-06-04T21:21:14Z
Publication date
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2020
Cita de ítem
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Astrophysical Journal, 892:148 (28pp), 2020
es_ES
Identifier
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10.3847/1538-4357/ab781c
Identifier
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https://repositorio.uchile.cl/handle/2250/175249
Abstract
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We compare the observed turbulent pressure in molecular gas, P-turb, to the required pressure for the interstellar gas to stay in equilibrium in the gravitational potential of a galaxy, P-DE. To do this, we combine arcsecond resolution CO data from PHANGS-ALMA with multiwavelength data that trace the atomic gas, stellar structure, and star formation rate (SFR) for 28 nearby star-forming galaxies. We find that P-turb correlates with-but almost always exceeds-the estimated P-DE on kiloparsec scales. This indicates that the molecular gas is overpressurized relative to the large-scale environment. We show that this overpressurization can be explained by the clumpy nature of molecular gas; a revised estimate of P-DE on cloud scales, which accounts for molecular gas self-gravity, external gravity, and ambient pressure, agrees well with the observed P-turb in galaxy disks. We also find that molecular gas with cloud-scale in our sample is more likely to be self-gravitating, whereas gas at lower pressure it appears more influenced by ambient pressure and/or external gravity. Furthermore, we show that the ratio between P-turb and the observed SFR surface density, is compatible with stellar feedback-driven momentum injection in most cases, while a subset of the regions may show evidence of turbulence driven by additional sources. The correlation between P-DE in galaxy disks is consistent with the expectation from self-regulated star formation models. Finally, we confirm the empirical correlation between molecular-to-atomic gas ratio and kpc-scale P-DE reported in previous works.
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Patrocinador
dc.description.sponsorship
ational Science Foundation (NSF)
1615105
1615109
1653300
NASA under ADAP grants
NNX16AF48G
NNX17AF39G
NASA under ATP grant
NNX17AG26G
Programme National "Physique et Chimie du Milieu Interstellaire (PCMI)" of CNRS/INSU
INC/INP
French Atomic Energy Commission
Centre National D'etudes Spatiales
"Programme National Cosmology et Galaxies (PNCG)" of CNRS/INSU
INP
IN2P3
Natural Sciences and Engineering Research Council of Canada
RGPIN-2017-03987
European Research Council (ERC)
694343
German Research Foundation (DFG)
KR4801/1-1
German Research Foundation (DFG)
KR4801/2-1
European Research Council (ERC)
714907
726384
German Research Foundation (DFG)
138713538-SFB 881
Heidelberg cluster of excellence - German Excellence Strategy
EXC 2181390900948
Spanish funding grant (MINECO/FEDER)
AYA2016-79006-P
Spanish funding grant (MCIU/AEI/FEDER)
PGC2018-094671B-I00