The nature of B supergiants: clues from a steep drop in rotation rates at 22000 K. The possibility of Bi-stability braking
arXiv:1003.1280 · doi:10.1051/0004-6361/201014205
Abstract
The location of B supergiants in the Hertzsprung-Russell diagram (HRD) represents a long-standing problem in massive star evolution. Here we propose their nature may be revealed utilising their rotational properties, and we highlight a steep drop in massive star rotation rates at an effective temperature of 22000 K. We discuss two potential explanations for it. On the one hand, the feature might be due to the end of the main sequence, which could potentially constrain the core overshooting parameter. On the other hand, the feature might be the result of enhanced mass loss at the predicted location of the bi-stability jump. We term this effect "bi-stability breaking" and discuss its potential consequences for the evolution of massive stars.
Accepted by A&A Letters (4 pages, 5 figures); typos corrected
References in corpus (6)
- The VLT-FLAMES survey of massive stars: atmospheric parameters and rotational velocity distributions for B-type stars in the Magellanic Clouds
- Bright OB stars in the Galaxy IV. Stellar and wind parameters of early to late B supergiants
- Quantitative studies of the optical and UV spectra of Galactic early B supergiants I. Fundamental parameters
- Collective pulsational velocity broadening due to gravity modes as a physical explanation for macroturbulence in hot massive stars
- Testing the predicted mass-loss bi-stability jump at radio wavelengths
- Mass loss and evolution of hot massive stars
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- Pre-Supernova Evolution of Massive Single and Binary Stars
- Rotating Massive Main-Sequence Stars I: Grids of Evolutionary Models and Isochrones
- The VLT-FLAMES Tarantula Survey XII. Rotational velocities of the single O-type stars
- Rotating Massive Main-Sequence Stars II: Simulating a Population of LMC early B-type Stars as a Test of Rotational Mixing
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- Low-metallicity massive single stars with rotation. Evolutionary models applicable to I Zwicky 18
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- The VLT-FLAMES Tarantula Survey X: Evidence for a bimodal distribution of rotational velocities for the single early B-type stars
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- The VLT-FLAMES Tarantula Survey. XXIX. Massive star formation in the local 30 Doradus starburst
- The VLT-FLAMES Tarantula Survey XXIV. Stellar properties of the O-type giants and supergiants in 30 Doradus
- The transition mass-loss rate: Calibrating the role of line-driven winds in massive star evolution
- The VLT-FLAMES Tarantula Survey XIX. B-type Supergiants - Atmospheric parameters and nitrogen abundances to investigate the role of binarity and the width of the main sequence
- The effects of surface fossil magnetic fields on massive star evolution: I. Magnetic field evolution, mass-loss quenching and magnetic braking
- The Uncertain Future of Massive Binaries Obscures the Origin of LIGO/Virgo Sources
- Massive star evolution : rotation, winds, and overshooting vectors in the Mass-Luminosity plane I. A calibrated grid of rotating single star models
- Two bi-stability jumps in theoretical wind models for massive stars and the implications for Luminous Blue Variable supernovae
- Nitrogen line spectroscopy of O-stars -- I. Nitrogen III emission line formation revisited
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- Rotating massive O stars with non-spherical 2D winds
- Convective core entrainment in 1D main sequence stellar models
- The effects of surface fossil magnetic fields on massive star evolution: II. Implementation of magnetic braking in MESA and implications for the evolution of surface rotation in OB stars
- The IACOB project. VII. The rotational properties of Galactic massive O-type stars revisited
- Observational consequences of turbulent pressure in the envelopes of massive stars
- Modeling the early evolution of massive OB stars with an experimental wind routine
- Grids of stellar models with rotation VII: Models from 0.8 to 300 M at super-solar metallicity (Z = 0.020)
- The spectroscopic Hertzsprung-Russell diagram of hot massive stars in the SMC
- Convective core sizes in rotating massive stars: I. Constraints from solar metallicity OB field stars
- Fast & slow winds from supergiants and Luminous Blue Variables
- Convective Properties of Rotating Two-Dimensional Core-Collapse Supernova Progenitors
- Stellar mass-loss near the Eddington limit. Tracing the sub-photospheric layers of classical Wolf-Rayet stars
- The excess of cool supergiants from contemporary stellar evolution models defies the metallicity-independent Humphreys-Davidson limit
- Theoretical wind clumping predictions of OB supergiants from line-driven instability simulations across the bi-stability jump
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- A theoretical investigation of the Humphreys-Davidson limit at high and low metallicity
- The theory of stellar winds
- Physics and evolution of the most massive stars in 30 Dor. Mass loss, envelope inflation, and a variable upper stellar mass limit
- New mass-loss rates of B supergiants from global wind models
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- On the H Behaviour of Blue Supergiants: Rise and Fall over the Bi-stability Jump
- Upper Mass-Loss Limits and Clumping in the Intermediate and Outer Wind Regions of OB stars
- The effects of surface fossil magnetic fields on massive star evolution: IV. Grids of models at Solar, LMC, and SMC metallicities
- How common is LBV S Dor variability at low metallicity?
- Clumping and X-Rays in cooler B supergiant stars
- Superadiabaticity and the metallicity independence of the Humphreys-Davidson limit
- Dusty Blue Supergiants: News from High-Angular Resolution Observations
- Hubble Tarantula Treasury Project V. The star cluster Hodge 301: the old face of 30 Doradus
- The IACOB project IX. Building a modern empirical database of Galactic O9-B9 supergiants: sample selection, description, and completeness
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- The IACOB project X. Large-scale quantitative spectroscopic analysis of Galactic luminous blue stars
- X-Shooting ULLYSES: Massive Stars at low metallicity IX: Empirical constraints on mass-loss rates and clumping parameters for OB supergiants in the Large Magellanic Cloud
- The blue supergiant MN18 and its bipolar circumstellar nebula
- The IACOB project XI. No increase of mass-loss rates over the bistability region
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- Impact of binary interaction on the evolution of blue supergiants
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- The Maximum Black Hole Mass at Solar Metallicity
- Bringing Stellar Evolution & Feedback Together: Summary of proposals from the Lorentz Center Workshop, 2022
- Binarity at LOw Metallicity (BLOeM): Multiplicity of early B-type supergiants in the Small Magellanic Cloud
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