Article (Scientific journals)
Testing angular momentum transport processes with asteroseismology of solar-type main-sequence stars
Bétrisey, Jérôme; Eggenberger, Patrick; Buldgen, Gaël et al.
2023In Astronomy and Astrophysics, 673, p. 11
Peer Reviewed verified by ORBi
 

Files


Full Text
BétriseyRota2023.pdf
Author postprint (697.29 kB)
Download

All documents in ORBi are protected by a user license.

Send to



Details



Keywords :
Asteroseismology; Stars: fundamental parameters; Stars: interiors; Stars: magnetic field; Stars: rotation; Hertzsprung-russell diagrams; Momentum transports; Rotation rate; Stars: Interiors; Stars: Rotation; Stars:fundamental parameters; Surface rotation; Transport process; Astronomy and Astrophysics; Space and Planetary Science; astro-ph.SR
Abstract :
[en] Context. Thanks to the so-called photometry revolution with the space-based missions CoRoT, Kepler, and TESS, asteroseismology has become a powerful tool to study the internal rotation of stars. The rotation rate depends on the efficiency of the angular momentum (AM) transport inside the star, and its study allows to constrain the internal AM transport processes, as well as improve our understanding of their physical nature. Aims. We compared the ratio of the rotation rate predicted by asteroseismology and starspot measurements of solar-type stars considering different AM transport prescriptions and investigated whether some of these prescriptions can be ruled out observationally. Methods. We conducted a two-step modelling procedure of four main-sequence stars from the Kepler LEGACY sample, which consists of an asteroseismic characterisation that serves as a guide for a modelling with rotating models, including a detailed and coherent treatment of the AM transport. The rotation profiles derived with this procedure were used to estimate the ratio of the mean asteroseismic rotation rate with the surface rotation rate from starspot measurements for each AM transport prescriptions. Comparisons between the models were then conducted. Results. In the hotter part of the Hertzsprung-Russell (HR) diagram (masses typically above ∼1.2 Mo at solar metallicity), models with only hydrodynamic transport processes and models with additional transport by magnetic instabilities are found to be consistent with previous measurements that observed a low degree (below 30%) of radial differential rotation between the radiative and convective zones. For these stars, which constitute a significant fraction of the Kepler LEGACY sample, a combination of asteroseismic constraints from the splitting of pressure modes and of the surface rotation rate does not allow us to conclude that an efficient AM transport is required in addition to transport by meridional circulation and shear instability alone. Even a model assuming local AM conservation cannot be ruled out. In the colder part of the HR diagram, the situation is different because of the efficient braking of the stellar surface by magnetised winds. We find a clear disagreement between the rotational properties of models that only include hydrodynamic processes and asteroseismic constraints, while models with magnetic fields correctly reproduce the observations, similarly to the solar case. Conclusions. This shows the existence of a mass regime corresponding to main-sequence F-type stars for which it is difficult to constrain the AM transport processes, unlike for hotter, Gamma Dor stars or colder, less massive solar analogues. The comparison between asteroseismic measurements and surface rotation rates enables us to easily rule out models with an inefficient transport of AM in the colder part of the HR diagram.
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Bétrisey, Jérôme ;  Observatoire de Genève, Université de Genève, Versoix, Switzerland
Eggenberger, Patrick;  Observatoire de Genève, Université de Genève, Versoix, Switzerland
Buldgen, Gaël ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Astrophysique stellaire théorique et astérosismologie ; Observatoire de Genève, Université de Genève, Versoix, Switzerland
Benomar, Othman ;  National Astronomical Observatory of Japan, Solar Science Observatory, Tokyo, Japan ; New York University Abu Dhabi, Center for Space Science, Abu Dhabi, United Arab Emirates
Bazot, Michaël ;  Heidelberg Institute for Theoretical Studies (HITS GGmbH), Heidelberg, Germany
Language :
English
Title :
Testing angular momentum transport processes with asteroseismology of solar-type main-sequence stars
Publication date :
May 2023
Journal title :
Astronomy and Astrophysics
ISSN :
0004-6361
eISSN :
1432-0746
Publisher :
EDP Sciences
Volume :
673
Pages :
L11
Peer reviewed :
Peer Reviewed verified by ORBi
Funders :
SNF - Schweizerischer Nationalfonds zur Förderung der wissenschaftlichen Forschung [CH]
Funding text :
J.B. and G.B. acknowledge funding from the SNF AMBIZIONE grant No 185805 (Seismic inversions and modelling of transport processes in stars). P.E. has 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).
Commentary :
Accepted for publication as a Letter in Astronomy and Astrophysics, section 1. Letters to the Editor
Available on ORBi :
since 28 December 2023

Statistics


Number of views
2 (0 by ULiège)
Number of downloads
2 (0 by ULiège)

Scopus citations®
 
5
Scopus citations®
without self-citations
3
OpenCitations
 
2

Bibliography


Similar publications



Contact ORBi