The evolution of rotating very massive stars with LMC composition
arXiv:1501.03794 · doi:10.1051/0004-6361/201424356
Abstract
We present a dense model grid with tailored input chemical composition appropriate for the Large Magellanic Cloud. We use a one-dimensional hydrodynamic stellar evolution code, which accounts for rotation, transport of angular momentum by magnetic fields, and stellar wind mass loss to compute our detailed models. We calculate stellar evolution models with initial masses of 70-500 Msun and with initial surface rotational velocities of 0-550 km/s, covering the core-hydrogen burning phase of evolution. We find our rapid rotators to be strongly influenced by rotationally induced mixing of helium, with quasi-chemically homogeneous evolution occurring for the fastest rotating models. Above 160 Msun, homogeneous evolution is also established through mass loss, producing pure helium stars at core hydrogen exhaustion independent of the initial rotation rate. Surface nitrogen enrichment is also found for slower rotators, even for stars that lose only a small fraction of their initial mass. For models above 150 MZAMS, and for models in the whole considered mass range later on, we find a considerable envelope inflation due to the proximity of these models to their Eddington limit. This leads to a maximum zero-age main sequence surface temperature of 56000 K, at 180 Msun, and to an evolution of stars in the mass range 50-100 Msun to the regime of luminous blue variables in the HR diagram with high internal Eddington factors. Inflation also leads to decreasing surface temperatures during the chemically homogeneous evolution of stars above 180 Msun. The cool surface temperatures due to the envelope inflation in our models lead to an enhanced mass loss, which prevents stars at LMC metallicity from evolving into pair-instability supernovae. The corresponding spin-down will also prevent very massive LMC stars to produce long-duration gamma-ray bursts, which might, however, originate from lower masses.
21 pages, 25 figures
References in corpus (16)
- Binary interaction dominates the evolution of massive stars
- Pre-Supernova Evolution of Massive Single and Binary Stars
- The R136 star cluster hosts several stars whose individual masses greatly exceed the accepted 150 Msun stellar mass limit
- The VLT-FLAMES Survey of Massive Stars: Observations centered on the Magellanic Cloud clusters NGC 330, NGC 346, NGC 2004, and the N11 region
- Mass loss from late-type WN stars and its Z-dependence: very massive stars approaching the Eddington limit
- The VLT-FLAMES survey of massive stars: rotation and nitrogen enrichment as the key to understanding massive star evolution
- The VLT-FLAMES survey of massive stars: Wind properties and evolution of hot massive stars in the LMC
- The spectroscopic Hertzsprung-Russell diagram
- Pair creation supernovae at low and high redshift
- The VLT-FLAMES Tarantula Survey XVII. Physical and wind properties of massive stars at the top of the main sequence
- The very massive binary NGC3603-A1
- Observational properties of low redshift pair instability supernovae
- A consistent solution for the velocity field and mass-loss rate of massive stars
- Rotating massive O stars with non-spherical 2D winds
- A first orbital solution for the very massive 30 Dor main-sequence WN6h+O binary R145
- R144 revealed as a double-lined spectroscopic binary
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- A synthetic population of Wolf-Rayet stars in the LMC based on detailed single and binary star evolution models
- Massive Stellar Mergers as Precursors of Hydrogen-rich Pulsational Pair Instability Supernovae
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- Physics and evolution of the most massive stars in 30 Dor. Mass loss, envelope inflation, and a variable upper stellar mass limit
- Inferring the presence of very massive stars in local star-forming regions
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- Contamination in TESS light curves: The case of the Fast Yellow Pulsating Supergiants
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- Reverse Algols and hydrogen-rich Wolf-Rayet stars from very massive binaries
- X-Shooting ULLYSES: Massive stars at low metallicity. IV. Spectral analysis methods and exemplary results for O stars
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- pySTARBURST99: The Next Generation of STARBURST99
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- Very massive stars at low metallicity: evolution, synthetic spectroscopy, and impact on the integrated light of starbursts
- Extinction towards the cluster R136 in the Large Magellanic Cloud: An extinction law from the near-infrared to the ultraviolet
- The wind properties of O-type stars at sub-SMC metallicity