English

The $\beta$ Cep/SPB star 12 Lacertae: extended mode identification and complex seismic modelling

Solar and Stellar Astrophysics 2013-04-16 v1

Abstract

Results of mode identification and seismic modelling of the β\beta Cep/SBP star 12 Lacertae are presented. Using data on the multi-colour photometry and radial velocity variations, we determine or constrain the mode degree, \ell, for all pulsational frequencies. Including the effects of rotation, we show that the dominant frequency, ν1\nu_1, is most likely a pure =1\ell=1 mode and the low frequency, νA\nu_A, is a dipole retrograde mode. We construct a set of seismic models which fit two pulsational frequencies corresponding to the modes =0,\ell= 0, p1_1 and =1,\ell= 1, g1_1 and reproduce also the complex amplitude of the bolometric flux variations, ff, for both frequencies simultaneously. Some of these seismic models reproduce also the frequency νA\nu_A, as a mode =1,\ell= 1, g13_{13} or g14_{14}, and its empirical values of ff. Moreover, it was possible to find a model fitting the six 12 Lac frequencies (the first five and νA\nu_A), only if the rotational splitting was calculated for a velocity of Vrot75V_{\rm rot}\approx 75 km/s. In the next step, we check the effects of model atmospheres, opacity data, chemical mixture and opacity enhancement. Our results show that the OP tables are preferred and an increase of opacities in the ZZ-bump spoils the concordance of the empirical and theoretical values of ff.

Keywords

Cite

@article{arxiv.1304.4049,
  title  = {The $\beta$ Cep/SPB star 12 Lacertae: extended mode identification and complex seismic modelling},
  author = {J. Daszyńska-Daszkiewicz and W. Szewczuk and P. Walczak},
  journal= {arXiv preprint arXiv:1304.4049},
  year   = {2013}
}

Comments

13 pages, 10 figures, published in MNRAS

R2 v1 2026-06-21T23:59:36.544Z