The Formation of Stellar Clusters: Time Varying Protostellar Accretion Rates
arXiv:astro-ph/0101277 · doi:10.1086/319488
Abstract
Identifying the processes that determine strength, duration and variability of protostellar mass growth is a fundamental ingredient of any theory of star formation. I discuss protostellar mass accretion rates dM/dt from numerical models which follow molecular cloud evolution from turbulent fragmentation towards the formation of stellar clusters. In a dense cluster environment, dM/dt is strongly time varying and influenced by the mutual interaction of protostellar cores and their competition for accretion from the common cluster gas reservoir. Even for protostars with similar final mass, the accretion histories may differ dramatically. High-mass stars build up in the central parts of dense, cluster-forming cloud regions. They begin to form in the early phases of cluster evolution, and continue to grow at a high rate until the available gas is exhausted or expelled by feedback. Lower-mass stars tend to form at later phases, and dM/dt declines rapidly after a short initial phase of strong growth. I present a simple fit formula for the time evolution of the average dM/dt for protostars of different masses in a dense cluster environment.
ApJ Letters in press, 4 pages including 2 resolution-reduced figures, full resolution version available at http://www.ucolick.org/~ralf/Preprints/p11.abstract.html
Cited by in corpus (32)
- The Initial Mass Function of Stars: Evidence for Uniformity in Variable Systems
- Control of star formation by supersonic turbulence
- Toward Understanding Massive Star Formation
- Molecular Cloud Evolution II. From cloud formation to the early stages of star formation in decaying conditions
- The Physics of Star Formation
- Dynamic star formation in the massive DR21 filament
- Gravitational fragmentation in turbulent primordial gas and the initial mass function of Population III stars
- The Formation of Stellar Clusters: Mass Spectra from Turbulent Molecular Cloud Fragmentation
- The stellar and sub-stellar IMF of simple and composite populations
- Which are the youngest protostars? Determining properties of confirmed and candidate Class0 sources by broad-band photometry
- Magnetic fields during the early stages of massive star formation - I. Accretion and disk evolution
- Instantaneous starburst of the massive clusters Westerlund 1 and NGC 3603 YC
- The dynamical evolution of Taurus--Auriga-type aggregates
- Star Formation in the First Galaxies - II: Clustered Star Formation and the Influence of Metal Line Cooling
- Protostellar mass accretion rates from gravoturbulent fragmentation
- Fragmentation and Evolution of Molecular Clouds. I: Algorithm and First Results
- The Formation of Star Clusters II: 3D Simulations of Magnetohydrodynamic Turbulence in Molecular Clouds
- The IMF of stellar clusters: effects of accretion and feedback
- Protostellar Angular Momentum Evolution during Gravoturbulent Fragmentation
- Fragmentation and Evolution of Molecular Clouds. II: The Effect of Dust Heating
- The first million years of the Sun: A calculation of formation and early evolution of a solar-mass star
- Hierarchical Stellar Structures in the Local Group Dwarf Galaxy NGC 6822
- Star Formation in Molecular Clouds
- MODEST-1: Integrating Stellar Evolution and Stellar Dynamics
- The Clustering Behavior of Pre-Main Sequence Stars in NGC 346 in the Small Magellanic Cloud
- Modest-2: A Summary
- Star formation in the first galaxies - III. Formation, evolution, and characteristics of the first stellar cluster
- Disk masses in the embedded and T Tauri phases of stellar evolution
- Evolution of Class0 protostars: Models vs. Observations
- The Core Mass Function in the Orion Nebula Cluster Region: What Determines the Final Stellar Masses?
- Formation of massive binaries
- Core dissolution and the dynamics of massive stars in young stellar clusters