Towards the impact of GMC collisions on the star formation rate
arXiv:2109.06195 · doi:10.1093/mnras/stac3751
Abstract
Collisions between giant molecular clouds (GMCs) are one of the pathways for massive star formation, due to the high densities created. However the enhancement of the star formation rate (SFR) is not well constrained. In this study we perform a parameter study of cloud-cloud collisions, and investigate how the resulting SFR depends on the details of set-up. Our parameter study explores variations in: collision speed; magnetic field inclination (with respect to the collisional axis); and resolution, as defined by the number of cells per Jeans length. In all our collision simulations we find a factor of 2-3 increase in the SFR compared to our no collision simulation, with star formation beginning sooner with a) high collisional velocities, b) parallel orientation between the magnetic field and collision axis, c) and lower resolution. The mean virial parameter of high density (and thus possible star-forming) gas increases with collisional velocity, but has little variation with magnetic field inclination. The alignment of the velocity and magnetic field remains uniform in low density environments but becomes more perpendicular with increasing density, indicating the compression of the magnetic field by collapsing gas. Comparing the trends in the SFR with other GMC collision studies, we find good agreement with studies that account for the gravitational boundedness of the gas in their star formation algorithm, but not with those that simply form stars above a prescribed density threshold. This suggests that the latter approach should be used with caution when modelling star formation on resolved cloud scales.
20 pages, 15 figures, 3 tables; accepted for publication in MNRAS
References in corpus (24)
- Array Programming with NumPy
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Grackle: a Chemistry and Cooling Library for Astrophysics
- 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
- Inefficient star formation through turbulence, magnetic fields and feedback
- Radiative recombination data for modelling dynamic finite-density plasmas
- Star formation at very low metallicity. I: Chemistry and cooling at low densities
- Do cloud-cloud collisions trigger high-mass star formation? I. Small cloud collisions
- Cloud-cloud collisions and triggered star formation
- The frequency and nature of `cloud-cloud collisions' in galaxies
- Rapid directional alignment of velocity and magnetic field in magnetohydrodynamic turbulence
- Chemical Rates on Small Grains and PAHs: C^+ Recombination and H_2 Formation
- Formation sites of Population III star formation: The effects of different levels of rotation and turbulence on the fragmentation behavior of primordial gas
- The impact of stellar feedback on the density and velocity structure of the interstellar medium
- Fragmentation induced starvation in Population III star formation: a resolution study
- The IMF as a function of supersonic turbulence
- The formation of young massive clusters by colliding flows
- The role of collision speed, cloud density, and turbulence in the formation of young massive clusters via cloud-cloud collisions
- The Velocity Statistics of Turbulent Clouds in the Presence of Gravity, Magnetic fields, Radiation, and Outflow Feedback
- Hydrodynamic simulations of mechanical stellar feedback in a molecular cloud formed by thermal instability
- The properties of clusters, and the orientation of magnetic fields relative to filaments, in magnetohydrodynamic simulations of colliding clouds
- ALMA reveals a cloud-cloud collision that triggers star formation in N66N of the Small Magellanic Cloud
- Building the molecular cloud population: the role of cloud mergers