Star cluster formation and cloud dispersal by radiative feedback: dependence on metallicity and compactness
arXiv:2005.13401 · doi:10.1093/mnras/staa2062
Abstract
We study star cluster formation in various environments with different metallicities and column densities by performing a suite of three-dimensional radiation hydrodynamics simulations. We find that the photoionization feedback from massive stars controls the star formation efficiency (SFE) in a star-forming cloud, and its impact sensitively depends on the gas metallicity and initial cloud surface density . At , SFE increases as a power law from 0.03 at to 0.3 at . In low-metallicity cases , star clusters form from atomic warm gases because the molecule formation time is not short enough with respect to the cooling or dynamical time. In addition, the whole cloud is disrupted more easily by expanding H{\sc ii} bubbles which have higher temperature owing to less efficient cooling. With smaller dust attenuation, the ionizing radiation feedback from nearby massive stars is stronger and terminate star formation in dense clumps. These effects result in inefficient star formation in low-metallicity environments: the SFE drops by a factor of at compared to the results for , regardless of . Newborn star clusters are also gravitationally less bound. We further develop a new semi-analytical model that can reproduce the simulation results well, particularly the observed dependencies of the SFEs on the cloud surface densities and metallicities.
17 pages, 13 figures, accepted for publication in MNRAS
References in corpus (16)
- Cosmic Star Formation History
- Theory of Star Formation
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- The lifecycle of molecular clouds in nearby star-forming disc galaxies
- The Dynamics of Radiation Pressure-Dominated HII Regions
- Fast and inefficient star formation due to short-lived molecular clouds and rapid feedback
- Before the first supernova: combined effects of HII regions and winds on molecular clouds
- The Global Evolution of Giant Molecular Clouds. I: Model Formulation and Quasi-Equilibrium Behavior
- Testing massive star evolution, star-formation history and feedback at low metallicity : Spectroscopic analysis of OB stars in the SMC Wing
- Numerical Simulations of Turbulent, Molecular Clouds Regulated by Radiation Feedback Forces I: Star Formation Rate and Efficiency
- Feedback in Clouds II: UV Photoionisation and the first supernova in a massive cloud
- The Structure of a Low-Metallicity Giant Molecular Cloud Complex
- On the origin of field O-type stars
- Star formation in turbulent molecular clouds with colliding flow
- Simulating Star Clusters Across Cosmic Time: II. Escape Fraction of Ionizing Photons from Molecular Clouds
- Upper stellar mass limit by radiative feedback at low-metallicities: metallicity and accretion rate dependence