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Massive star cluster formation

delete2024-10-02
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OA
AI
B
Brooke Polak *
M
Mordecai‐Mark Mac Low
R
Ralf S. Klessen
J
Jia Wei Teh
C
Claude Cournoyer-Cloutier
E
Eric P. Andersson
S
Sabrina M. Appel
A
Aaron Tran
S
Sean C. Lewis
M
Maite J. C. Wilhelm
S
Simon Portegies Zwart
S
Simon C. O. Glover
S
Steven Rieder
王龙 cover
王龙 (Long Wang)
S
Stephen L. W. McMillan
DOI:10.1051/0004-6361/202348840delete
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Abstract

Abstract

En 中文
The mode of star formation that results in the formation of globular clusters and young massive clusters is difficult to constrain through observations. We present models of massive star cluster formation using the TORCH framework, which uses the Astrophysical MUltipurpose Software Environment (AMUSE) to couple distinct multi-physics codes that handle star formation, stellar evolution and dynamics, radiative transfer, and magnetohydrodynamics. We upgraded TORCH by implementing the N-body code PETAR, thereby enabling TORCH to handle massive clusters forming from 10(6) M-circle dot clouds with >= 10(5) individual stars. We present results from TORCH simulations of star clusters forming from 10(4), 10(5), and 10(6) M-circle dot turbulent spherical gas clouds (named M4, M5, M6) of radius R = 11.7 pc. We find that star formation is highly efficient and becomes more so at a higher cloud mass and surface density. For M4, M5, and M6 with initial surface densities 2.325 x 10(1,2,3) M-circle dot pc(-2), after a free-fall time of t(ff) = 6.7,2.1,0.67 Myr, we find that similar to 30%, 40%, and 60% of the cloud mass has formed into stars, respectively. The end of simulation-integrated star formation efficiencies for M4, M5, and M6 are & varepsilon;(star) = M-star/M-cloud = 36%, 65%, and 85%. Observations of nearby clusters similar in mass and size to M4 have instantaneous star formation efficiencies of & varepsilon;(inst) <= 30%, which is slightly lower than the integrated star formation efficiency of M4. The M5 and M6 models represent a different regime of cluster formation that is more appropriate for the conditions in starburst galaxies and gas-rich galaxies at high redshift, and that leads to a significantly higher efficiency of star formation. We argue that young massive clusters build up through short efficient bursts of star formation in regions that are sufficiently dense (Sigma >= 10(2) M-circle dot pc(-2)) and massive (M-cloud >= 10(5) M-circle dot). In such environments, stellar feedback from winds and radiation is not strong enough to counteract the gravity from gas and stars until a majority of the gas has formed into stars.
Keywords:
ISM: clouds
galaxies: star clusters: general
galaxies: star formation

Journal

Astronomy and Astrophysics cover
Astronomy and Astrophysics
IF:
5.8
Papers:
5.0W
Citations:
18.3W

Organization

D
Drexel University
Scholars:
1.3W
Papers: 1.1W
Citations: 2.2W
R
Ruprecht Karls University Heidelberg
Scholars:
5.6W
Papers: 4.3W
Citations: 66
U
university of wisconsin madison
Scholars:
3.8W
Papers: 2.9W
Citations: 53
R
rutgers university new brunswick
Scholars:
2.3W
Papers: 1.9W
Citations: 32
University of Wisconsin System cover
University of Wisconsin System
Scholars:
6.7W
Papers: 5.8W
Citations: 382
L
leiden university - excl lumc
Scholars:
3.5W
Papers: 2.9W
Citations: 46
R
rutgers university system
Scholars:
4.1W
Papers: 3.7W
Citations: 53
M
McMaster University
Scholars:
3.6W
Papers: 3.3W
Citations: 4.4W
A
american museum of natural history (amnh)
Scholars:
1.6K
Papers: 1.8K
Citations: 7
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