The Betelgeuse Project III: Merger Characteristics
arXiv:2010.08880 · doi:10.3847/1538-4357/abc3c9
Abstract
We previously proposed that Betelgeuse might have been spun up by accreting a companion of about 1 solar mass. Here we explore in more detail the possible systematics of such a merger and a larger range of accreted masses. We use the stellar evolutionary code MESA to add angular momentum to a primary star in core helium burning, core carbon burning, or shell carbon burning. Our models provide a reasonable "natural" explanation for why Betelgeuse has a large, but sub-Keplerian equatorial velocity. They eject sufficient mass and angular momentum in rotationally-induced mass loss to reproduce the observed ratio of the equatorial velocity to escape velocity of Betelgeuse, ~0.23, within a factor of three nearly independent of the primary mass, the secondary mass, and the epoch at which merger occurs. Our models suggest that merger of a primary of somewhat less than 15 solar masses with secondaries of from 1 to 10 solar masses during core helium burning or core carbon burning could yield the equatorial rotational velocity of ~15 km/s attributed to Betelgeuse. For accreting models, a wave of angular momentum is halted at the composition boundary at the edge of the helium core. The inner core is thus not affected by the accretion of the companion in these simulations. Accretion has relatively little effect on the production of magnetic fields in the inner core. Our results do not prove, but do not negate that Betelgeuse might have ingested a companion of several solar masses.
12 pages, 15 figures, accepted for publication in the Astrophysical Journal
References in corpus (18)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Binary interaction dominates the evolution of massive stars
- Semi-global simulations of the magneto-rotational instability in core collapse supernovae
- The Triple-Ring Nebula around SN1987A: Fingerprint of a binary merger
- Common envelope events with low-mass giants: understanding the transition to the slow spiral-in
- On the role of recombination in common-envelope ejections
- Episodic mass ejections from common-envelope objects
- The close circumstellar environment of Betelgeuse - V. Rotation velocity and molecular envelope properties from ALMA
- The Role of the Magnetorotational Instability in Massive Stars
- An Updated 2017 Astrometric Solution for Betelgeuse
- The Betelgeuse Project: Constraints from Rotation
- Betelgeuse fainter in the sub-millimetre too: an analysis of JCMT and APEX monitoring during the recent optical minimum
- Dynamical evolution of star-forming regions: III. Unbound stars and predictions for Gaia
- Is Betelgeuse the Outcome of a Past Merger?
- Kepler rapidly rotating giant stars
- Centrifugally Driven Mass Loss and Outbursts of Massive Stars
- Common envelope: progress and transients
- HD 93795: a late-B supergiant star with a square circumstellar nebula
Cited by in corpus (4)
- Is Betelgeuse Really Rotating? Synthetic ALMA Observations of Large-scale Convection in 3D Simulations of Red Supergiants
- Stellar models of Betelgeuse constrained using observed surface conditions
- Betelgeuse, the Prototypical Red Supergiant
- Asteroseismology: Looking for axions in the red supergiant star Alpha Ori