Simulating radiative feedback and star cluster formation in GMCs: II. Mass dependence of cloud destruction and cluster properties
arXiv:1706.00477 · doi:10.1093/mnras/stx1363
Abstract
The process of radiative feedback in Giant Molecular Clouds (GMCs) is an important mechanism for limiting star cluster formation through the heating and ionization of the surrounding gas. We explore the degree to which radiative feedback affects early (5 Myr) cluster formation in GMCs having masses that range from 10 M using the FLASH code. The inclusion of radiative feedback lowers the efficiency of cluster formation by 20-50\% relative to hydrodynamic simulations. Two models in particular --- 510 and 10 M --- show the largest suppression of the cluster formation efficiency, corresponding to a factor of 2. For these clouds only, the internal energy, a measure of the energy injected by radiative feedback, exceeds the gravitational potential for a significant amount of time. We find a clear relation between the maximum cluster mass, M, formed in a GMC of mass M; M M. This scaling result suggests that young globular clusters at the necessary scale of form within host GMCs of masses near . We compare simulated cluster mass distributions to the observed embedded cluster mass function ( where = -1) and find good agreement ( = -0.990.14) only for simulations including radiative feedback, indicating this process is important in controlling the growth of young clusters. However, the high star formation efficiencies, which range from 16-21\%, and high star formation rates compared to locally observed regions suggest other feedback mechanisms are also important during the formation and growth of stellar clusters.
Accepted for publication in MNRAS, 15 pages, 13 figures
References in corpus (12)
- Theory of Star Formation
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- A Superbubble Feedback Model for Galaxy Simulations
- Modeling jet and outflow feedback during star cluster formation
- Modelling the supernova-driven ISM in different environments
- Gravitational fragmentation and the formation of brown dwarfs in stellar clusters
- Driving Turbulence and Triggering Star Formation by Ionizing Radiation
- Converting H Luminosities into Star Formation Rates
- Giant Molecular Clouds in M31: I - Molecular Cloud Properties
- Supersonic turbulence, filamentary accretion,and the rapid assembly of massive stars and disks
- Ionisation-induced star formation II: External irradiation of a turbulent molecular cloud
- The effect of stellar winds on the formation of a protocluster
Cited by in corpus (12)
- SILCC VI -- Multi-phase ISM structure, stellar clustering, and outflows with supernovae, stellar winds, ionising radiation and cosmic rays
- The imprint of clump formation at high redshift. I. A disc alpha-abundance dichotomy
- Photoevaporation of Jeans-unstable molecular clumps
- Simulating Star Clusters Across Cosmic Time: II. Escape Fraction of Ionizing Photons from Molecular Clouds
- Massive star feedback in clusters: variation of the FUV interstellar radiation field in time and space
- The growth of H II regions around massive stars: the role of metallicity and dust
- Stellar feedback in M83 as observed with MUSE -- I. Overview, an unprecedented view of the stellar and gas kinematics and evidence of outflowing gas
- Highly turbulent gas on GMC-scales in NGC 3256, the nearest luminous infrared galaxy
- Far and extreme UV radiation feedback in molecular clouds and its influence on the mass and size of star clusters
- TREVR: A general radiative transfer algorithm
- Extreme giant molecular clouds in the luminous infrared galaxy NGC 3256
- The Initial Properties of Young Star Clusters in M83