Superadiabaticity and the metallicity independence of the Humphreys-Davidson limit
arXiv:2107.02183 · doi:10.1093/mnras/stab1948
Abstract
The Humphreys-Davidson (HD) limit sets the boundary between evolutionary channels of massive stars that either end their lives as red supergiants (RSGs) or as the hotter blue supergiants (BSGs) and Wolf-Rayet stars. Mixing in the envelopes of massive stars close to their Eddington limit is crucial for investigating the upper luminosity limit of the coolest supergiants. We study the effects of excess mixing in superadiabatic layers that are dominated by radiation pressure, and we critically investigate the effects of mixing and mass loss on the evolution of RSGs with log (Teff/K) < 3.68 - as a function of metallicity. Using MESA, we produce grids of massive star models at three metallicities: Galactic (Zsol), LMC (1/2 Zsol) and SMC (1/5 Zsol), with both high and low amounts of overshooting to study the upper luminosity limit of RSGs. We systematically study the effects of excess mixing in the superadiabatic layers of post-main sequence massive stars, overshooting above the hydrogen core and yellow supergiant (YSG) mass-loss rates on the fraction of core helium burning time spent as a RSG. We find that the excess mixing in the superadiabatic layers is stronger at lower metallicities, as it depends on the opacities in the hydrogen bump at log (Teff/K) ~ 4, which become more pronounced at lower metallicity. This shifts the cutoff luminosities to lower values at lower metallicities, thus balancing the first-order effect of mass loss. The opposing effects of mass loss and excess envelope mixing during post-main sequence evolution of stars with higher overshooting potentially results in a metallicity-independent upper luminosity limit.
Accepted for publication in MNRAS. 15 pages, 13 figures
References in corpus (15)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Toward Complete Statistics of Massive Binary Stars: Penultimate Results from the Cygnus OB2 Radial Velocity Survey
- The evolution of rotating very massive stars with LMC composition
- The VLT-FLAMES Tarantula Survey XVII. Physical and wind properties of massive stars at the top of the main sequence
- The spectroscopic Hertzsprung-Russell diagram of Galactic massive stars
- Constraining mixing in massive stars in the Small Magellanic Cloud
- The `Red Supergiant Problem': the upper luminosity boundary of type-II supernova progenitors
- Massive donors in interacting binaries: effect of metallicity
- The metallicity dependence of envelope inflation in massive stars
- Rotating massive O stars with non-spherical 2D winds
- Wind-envelope interaction as the origin of the slow cyclic brightness variations of luminous blue variables
- The excess of cool supergiants from contemporary stellar evolution models defies the metallicity-independent Humphreys-Davidson limit
- Instabilities in the Envelopes and Winds of Very Massive Stars
- Red Supergiants, Yellow Hypergiants, and Post-RSG Evolution