Fast cloud-cloud collisions in a strongly barred galaxy: Suppression of massive star formation
arXiv:2003.12074 · doi:10.1093/mnras/staa840
Abstract
Recent galaxy observations show that star formation activity changes depending on galactic environments. In order to understand the diversity of galactic-scale star formation, it is crucial to understand the formation and evolution of giant molecular clouds in an extreme environment. We focus on observational evidence that bars in strongly barred galaxies lack massive stars even though quantities of molecular gas are sufficient to form stars. In this paper, we present a hydrodynamical simulation of a strongly barred galaxy, using a stellar potential which is taken from observational results of NGC1300, and we compare cloud properties between different galactic environments: bar, bar-end and spiral arms. We find that the mean of cloud's virial parameter is ~1 and that there is no environmental dependence, indicating that the gravitationally-bound state of a cloud is not behind the observational evidence of the lack of massive stars in strong bars. Instead, we focus on cloud-cloud collisions, which have been proposed as a triggering mechanism for massive star formation. We find that the collision speed in the bar is faster than those in the other regions. We examine the collision frequency using clouds' kinematics and conclude that the fast collisions in the bar could originate from random-like motion of clouds due to elliptical gas orbits shifted by the bar potential. These results suggest that the observed regions of lack of active star-formation in the strong bar originate from the fast cloud-cloud collisions, which are inefficient in forming massive stars, due to the galactic-scale violent gas motion.
15 pages, 13 figures, accepted for publication in MNRAS
References in corpus (13)
- The lifecycle of molecular clouds in nearby star-forming disc galaxies
- Star Formation in Disk Galaxies. I. Formation and Evolution of Giant Molecular Clouds via Gravitational Instability and Cloud Collisions
- Do cloud-cloud collisions trigger high-mass star formation? I. Small cloud collisions
- Molecular clouds towards RCW 49 and Westerlund 2; Evidence for cluster formation triggered by cloud-cloud collision
- The frequency and nature of `cloud-cloud collisions' in galaxies
- Triggered O star formation in M20 via cloud-cloud collision: Comparisons between high-resolution CO observations and simulations
- Star formation efficiency in the Barred Spiral Galaxy NGC 4303
- A fundamental test for stellar feedback recipes in galaxy simulations
- Environmental dependence of star formation induced by cloud collisions in a barred galaxy
- Wide-field 12CO (J = 1-0) Imaging of the Nearby Barred Galaxy M83 with NMA and Nobeyema 45-m telescope: Molecular Gas Kinematics and Star Formation Along the Bar
- Star Formation in Disk Galaxies. III. Does stellar feedback result in cloud death?
- The Interstellar Medium and Star Formation of Galactic Disks. I. ISM and GMC properties with Diffuse FUV and Cosmic Ray Backgrounds
- Properties of giant molecular clouds in the strongly barred galaxy NGC1300
Cited by in corpus (10)
- Galaxy Zoo: Stronger bars facilitate quenching in star forming galaxies
- Statistical Study of the Star Formation Efficiency in Bars: Is Star Formation Suppressed in Gas-Rich Bars?
- A large amount of diffuse molecular gases in the bar of the strongly barred galaxy NGC1300: Cause of the low star formation efficiency
- Connection among environment, cloud-cloud collision speed, and star formation activity in the strongly barred galaxy NGC1300
- CO(2-1)/CO(1-0) line ratio on 100 parsec scale in the nearby barred galaxy NGC1300
- Massive core/star formation triggered by cloud-cloud collision: II High-speed collisions of magnetized clouds
- Cloud-cloud collisions triggering star formation in galaxy simulations
- A 260 pc resolution ALMA map of HCN(1-0) in the galaxy NGC 4321
- Multiple-scale gas infall through gravity torques on Milky Way twins
- Cloud populations versus galactic environment in NGC4689, NGC628, NGC1566, and NGC4321