English

A Model for Eruptive Mass Loss in Massive Stars

Solar and Stellar Astrophysics 2024-09-10 v2 Astrophysics of Galaxies

Abstract

Eruptive mass loss in massive stars is known to occur, but the mechanism(s) are not yet well-understood. One proposed physical explanation appeals to opacity-driven super-Eddington luminosities in stellar envelopes. Here, we present a 1D model for eruptive mass loss and implement this model in the MESA stellar evolution code. The model identifies regions in the star where the energy associated with a locally super-Eddington luminosity exceeds the binding energy of the overlaying envelope. The material above such regions is ejected from the star. Stars with masses 10100 M10-100~M_\odot at solar and SMC metallicities are evolved through core helium burning, with and without this new eruptive mass-loss scheme. We find that eruptive mass loss of up to 102 Myr1\sim10^{-2}~M_\odot \mathrm{yr}^{-1} can be driven by this mechanism, and occurs in a vertical band on the HR diagram between 3.5log(Teff/K)4.03.5 \lesssim \log(T_\mathrm{eff}/\mathrm{K}) \lesssim 4.0. This predicted eruptive mass loss prevents stars of initial masses 20 M\gtrsim20~M_\odot from evolving to become red supergiants, with the stars instead ending their lives as blue supergiants, and therefore offers a possible explanation for the observed lack of red supergiants in that mass regime.

Keywords

Cite

@article{arxiv.2405.12274,
  title  = {A Model for Eruptive Mass Loss in Massive Stars},
  author = {Shelley J. Cheng and Jared A. Goldberg and Matteo Cantiello and Evan B. Bauer and Mathieu Renzo and Charlie Conroy},
  journal= {arXiv preprint arXiv:2405.12274},
  year   = {2024}
}

Comments

17 pages, 9 figures, accepted to ApJ