Article (Scientific journals)
Asteroseismology of β Cephei stars: The stellar inferences tested in hare and hound exercises
Salmon, Sébastien; Eggenberger, P.; Montalban, J. et al.
2022In Astronomy and Astrophysics, 659
Peer Reviewed verified by ORBi
 

Files


Full Text
Salmon_22.pdf
Author postprint (10.4 MB)
Download

All documents in ORBi are protected by a user license.

Send to



Details



Keywords :
Asteroseismology; Stars: early-Type; Stars: oscillations; Intelligent systems; Mixing; Monte Carlo methods; Probability distributions; Seismology; Accuracy and precision; Main sequence stars; Mixing process; Oscillation mode; Star oscillations; Stars:early type; Stellar modeling; Stellar parameters; Stellars; Stars
Abstract :
[en] Context. The β Cephei pulsators are massive, a frac14;8a 25aA AAA Ma essentially on the main sequence, stars. The number of detected modes in β Cephei stars often remains limited to less than a dozen of low radial-order modes. Such oscillation modes are in principle able to constrain the internal processes acting in the star. They probe the chemical gradient at the edge of the convective core, in particular its location and extension. They hence give constraints on macroscopic processes, such as hydrodynamic or magnetic instabilities, that have an impact on the mixing there. Yet, it is not clear to what extent the seismic inferences depend on the physics employed for the stellar modelling or on the observational dataset used. Consequently, it is not easy to estimate the accuracy and precision on the parameters and the nature of the physical processes inferred. Aims. We investigate the observational constraints, in particular the properties of the minimum set of pulsations detected, which are necessary to provide accurate constraints on the mixing processes in β Cephei stars. We explore the importance of the identification of the angular degree of the modes. In addition, depending on the quality of the seismic dataset and the classical non-seismic constraints, we aim to estimate, in a systematic way, the precision achievable with asteroseismology on the determination of their stellar parameters. Methods. We propose a method extending the forward approach classically used to model β Cephei stars. With the help of Monte-Carlo simulations, the probability distributions of the asteroseismic-derived stellar parameters were obtained. With these distributions, we provide a systemic way to estimate the errors derived from the modelling. A particular effort was made to include, not only the observational errors, but also the theoretical uncertainties of the models. We then estimated the accuracy and precision of asteroseismology for β Cephei stars in a series of hare and hound exercises. Results. The results of the hare and hounds show that a set of four to five oscillation frequencies with an identified angular degree already leads to accurate inferences on the stellar parameters. Without the identification of the modes, the addition of other observational constraints, such as the effective temperature and surface gravity, still ensures the success of the seismic modelling. When the internal microscopic physics of the star and stellar models used for the modelling differ, the constraints derived on the internal structure remain valid if expressed in terms of acoustic variables, such as the radius. However, they are then hardly informative on structural variables expressed in mass. The characterisation of the mixing processes at the boundary of the convective core are model-dependent and it requires the use of models implemented with processes of a similar nature. ©
Research Center/Unit :
STAR - Space sciences, Technologies and Astrophysics Research - ULiège
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Salmon, Sébastien ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Astrophysique stellaire théorique et astérosismologie ; Observatoire de Geneve, Universite de Geneve, Ch Pegasi 51, Sauverny, 1290, Switzerland
Eggenberger, P.;  Observatoire de Geneve, Universite de Geneve, Ch Pegasi 51, Sauverny, 1290, Switzerland
Montalban, J.;  Dipartimento di Fisica e Astronomia, Universita Degli Studi di Bologna, Bologna, Italy
Miglio, A.;  Dipartimento di Fisica e Astronomia, Universita Degli Studi di Bologna, Bologna, Italy, INAF A Astrophysics and Space Science Observatory Bologna, Bologna, Italy
Grötsch-Noels, Arlette ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Astrophysique stellaire théorique et astérosismologie ; STAR Institute, Universite de Liege, Allee du 6 Aout 19C, Liege, 4000, Belgium
Buldgen, Gaël ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Astrophysique stellaire théorique et astérosismologie ; Observatoire de Geneve, Universite de Geneve, Ch Pegasi 51, Sauverny, 1290, Switzerland
Moyano, F.;  Observatoire de Geneve, Universite de Geneve, Ch Pegasi 51, Sauverny, 1290, Switzerland
Meynet, G.;  Observatoire de Geneve, Universite de Geneve, Ch Pegasi 51, Sauverny, 1290, Switzerland
Language :
English
Title :
Asteroseismology of β Cephei stars: The stellar inferences tested in hare and hound exercises
Publication date :
2022
Journal title :
Astronomy and Astrophysics
ISSN :
0004-6361
eISSN :
1432-0746
Publisher :
EDP Sciences
Volume :
659
Peer reviewed :
Peer Reviewed verified by ORBi
Funding text :
Acknowledgements. We thank Dr T. Morel for insightful comments and discussion on this work. S.J.A.J.S., P.E., F.M. and G.M. have received funding from the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (grant agreement No 833925, project STAREX). J.M. and A.M. acknowledge support from the European Research Council Consolidator Grant funding scheme (project ASTEROCHRONOME- TRY, G.A. n. 772293, http://www.asterochronometry.eu). G.B. acknowledges funding from the SNF AMBIZIONE grant No. 185805 (Seismic inversions and modelling of transport processes in stars).
Available on ORBi :
since 23 December 2022

Statistics


Number of views
17 (0 by ULiège)
Number of downloads
9 (0 by ULiège)

Scopus citations®
 
9
Scopus citations®
without self-citations
7
OpenCitations
 
3

Bibliography


Similar publications



Contact ORBi