Star formation with disc accretion and rotation I. Stars between 2 and 22 Msol at solar metallicity
arXiv:1306.5871 · doi:10.1051/0004-6361/201321359
Abstract
The way angular momentum is built up in stars during their formation process may have an impact on their further evolution. In the frame of the cold disc accretion scenario, we study for the first time how angular momentum builds up inside the star during its formation and what are the consequences for its evolution on the main sequence (MS). Computation begins from a hydrostatic core on the Hayashi line of 0.7 Msol at solar metallicity (Z=0.014) rotating as a solid body. Accretion rates depending on the luminosity of the accreting object are considered varying between 1.5e-5 and 1.7e-3 Msol/yr. The accreted matter is assumed to have an angular velocity equal to that of the outer layer of the accreting star. Models are computed for a mass-range on the zero-age main sequence (ZAMS) between 2 and 22 Msol. We study how the internal and surface velocities vary as a function of time during the accretion phase and the evolution towards the ZAMS. Stellar models, whose evolution has been followed along the pre-MS phase, are found to exhibit a shallow gradient of angular velocity on the ZAMS. Interestingly, for masses on the ZAMS larger than 8 Msol, there exists a maximum surface velocity that can be reached through the present scenario of formation. Typically, for 14 Msol models, only stars with surface velocities on the ZAMS lower than about 45% of the critical velocity can be formed. To reach higher velocities would require to start from cores rotating above the critical limit. We find that this upper velocity limit is smaller for higher masses. In contrast, below 8 Msol, there is no restriction and the whole domain of velocities, up to the critical one, can be reached.
References in corpus (7)
- The rotation rates of massive stars: the role of binary interaction through tides, mass transfer and mergers
- Circumventing the radiation pressure barrier in the formation of massive stars via disk accretion
- Three-dimensional simulation of massive star formation in the disk accretion scenario
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- Neon Abundances in B-Stars of the Orion Association: Solving the Solar Model Problem?
- Impact of rotation and disc lifetime on pre-main sequence lithium depletion of solar-type stars
- A high-resolution spectropolarimetric survey of Herbig Ae/Be stars - II. Rotation
Cited by in corpus (22)
- Grids of stellar models with rotation - III. Models from 0.8 to 120 Msun at a metallicity Z = 0.002
- The Evolution of Supermassive Population III Stars
- Distributed star formation throughout the Galactic Center cloud Sgr B2
- Grids of stellar models with rotation IV. Models from 1.7 to 120 Msun at a metallicity Z = 0.0004
- Constraining the efficiency of angular momentum transport with asteroseismology of red giants: the effect of stellar mass
- Massive outflows associated with ATLASGAL clumps
- Explaining the luminosity spread in young clusters: proto and pre-main sequence stellar evolution in a molecular cloud environment
- Massive star formation by accretion I. Disc accretion
- M17 MIR: A massive protostar with multiple accretion Outbursts
- Stellar models and isochrones from low-mass to massive stars including pre-main sequence phase with accretion
- The Extraordinary Outburst in the Massive Protostellar System NGC6334I-MM1: Strong Increase in Mid-Infrared Continuum Emission
- Angular momentum transport by magnetic fields in main sequence stars with Gamma Doradus pulsators
- Detecting strongly lensed supernovae at z ~ 5-7 with LSST
- Massive star formation by accretion II. Rotation: how to circumvent the angular momentum barrier?
- The evolution of single B-type stars with a large angular momentum content
- Impact of initial models and variable accretion rates on the pre-main-sequence evolution of massive and intermediate-mass stars and the early evolution of HII regions
- On the Role of the Limit in the Formation of Population III Massive Stars
- Can very massive Population III stars produce a super-collapsar?
- Stellar models of Betelgeuse constrained using observed surface conditions
- A probable pre-main sequence chemically peculiar star in the open cluster Stock 16
- Population III star formation in the presence of turbulence, magnetic fields and ionizing radiation feedback
- Probing stellar rotation in the Pleiades with gravity-mode pulsators