On the Role of the Limit in the Formation of Population III Massive Stars
arXiv:1603.02690 · doi:10.3847/0004-637X/820/2/135
Abstract
We explore the role of the modified Eddington limit due to rapid rotation (the so-called limit) in the formation of Population III stars. We performed one-dimensional stellar evolution simulations of mass-accreting zero-metallicity protostars at a very high rate () and dealt with stellar rotation as a separate post-process. The protostar would reach the Keplerian rotation very soon after the onset of mass accretion, but mass accretion would continue as stellar angular momentum is transferred outward to the accretion disk by viscous stress. The protostar envelope expands rapidly when the stellar mass reaches and the Eddington factor sharply increases. This makes the protostar rotate critically at a rate that is significantly below the Keplerian value (i.e., the limit). The resultant positive gradient of the angluar velocity in the boundary layer between the protostar and the Keplerian disk prohibits angular momentum transport from the star to the disk, and consequently further rapid mass accretion. This would prevent the protostar from growing significantly beyond . Another important consequence of the limit is that the protostar can remain fairly compact () and avoid a fluffy structure () that is usually found with a very high mass accretion rate. This effect would make the protostar less prone to binary interactions during the protostar phase. Although our analysis is based on Pop III protostar models, this role of the limit would be universal in the formation process of massive stars, regardless of metallicity.
11 pages, 8 figures, Accepted for publication in ApJ
References in corpus (5)
- Modules for Experiments in Stellar Astrophysics (MESA)
- The Mass Spectrum of the First Stars
- The Formation of the First Stars II. Radiative Feedback Processes and Implications for the Initial Mass Function
- White dwarf spins from low mass stellar evolution models
- Surface temperature and synthetic spectral energy distributions for rotationally deformed stars
Cited by in corpus (12)
- Feedback-regulated star formation and escape of LyC photons from mini-haloes during reionisation
- Formation of supermassive black hole seeds
- Formation of the first stars and black holes
- On the Rotation of Supermassive Stars
- Angular momentum transfer in primordial discs and the rotation of the first stars
- Massive star formation by accretion II. Rotation: how to circumvent the angular momentum barrier?
- 3D Radiation-Hydrodynamic Simulations Resolving Interior of Rapidly Accreting Primordial Protostar
- Disk fragmentation and intermittent accretion onto supermassive stars
- Primordial protostars accreting beyond the -limit: radiation effect around the star-disk boundary
- Rotating Supermassive Pop III Stars On The Main Sequence
- Evolution and Final Fates of Rapidly Accreting Supermassive Stars
- Signatures of Exploding Supermassive PopIII Stars at High Redshift in JWST, EUCLID and Roman Space Telescope