The IACOB project: IV. New predictions for high-degree non-radial mode instability domains in massive stars and connection with macroturbulent broadening
arXiv:1608.05520 · doi:10.1051/0004-6361/201628856
Abstract
Asteroseismology is a powerful tool to access the internal structure of stars. Apart from the important impact of theoretical developments, progress in this field has been commonly associated with the analysis of time-resolved observations. Recently, the so-called macroturbulent broadening has been proposed to be a complementary and less expensive way -- in terms of observational time -- to investigate pulsations in massive stars. We assess to what extent this ubiquitous non-rotational broadening component shaping the line profiles of O stars and B supergiants is a spectroscopic signature of pulsation modes driven by a heat mechanism. We compute stellar main sequence and post-main sequence models from 3 to 70Msun with the ATON stellar evolution code and determine the instability domains for heat-driven modes for degrees l=1-20 using the adiabatic and non-adiabatic codes LOSC and MAD. We use the observational material presented in Simón-Díaz et al. (2016) to investigate possible correlations between the single snapshot line-broadening properties of a sample of ~260 O and B-type stars and their location inside/outside the various predicted instability domains. We present an homogeneous prediction for the non-radial instability domains of massive stars for degree l up to 20. We provide a global picture of what to expect from an observational point of view in terms of frequency range of excited modes, and investigate the behavior of the instabilities with stellar evolution and increasing degree of the mode. Furthermore, our pulsational stability analysis, once compared to the empirical results of Simón-Díaz et al. (2016), indicates that stellar oscillations originated by a heat mechanism can not explain alone the occurrence of the large non-rotational line-broadening component commonly detected in the O star and B supergiant domain.
14 pages, 8 figures, Reproduced with permission from Astronomy & Astrophysics, \c{opyright} ESO
References in corpus (8)
- The spectroscopic Hertzsprung-Russell diagram
- The spectroscopic Hertzsprung-Russell diagram of Galactic massive stars
- Most Detects G- and P-Modes in the B Supergiant HD 163899 (B2Ib/II)
- Instability strips of SPB and beta Cephei stars: the effect of the updated OP opacities and of the metal mixture
- The two hybrid B-type pulsators: Nu Eridani and 12 Lacertae
- Revised instability domains of SPB and beta Cephei stars
- On the use of the Fourier Transform to determine the projected rotational velocity of line-profile variable B stars
- Beat Cepheids as Probes of Stellar and Galactic Metallicity: The New AGS Abundances