Article (Scientific journals)
New insight into the massive eccentric binary HD 165052: self-consistent orbital solution, apsidal motion, and fundamental parameters
Rosu, Sophie; Quintero, E A; Rauw, Grégor et al.
2023In Monthly Notices of the Royal Astronomical Society, 521 (2), p. 2988-3003
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Keywords :
Space and Planetary Science; Astronomy and Astrophysics
Abstract :
[en] HD 165052 is a short-period massive eccentric binary system that undergoes apsidal motion. As the rate of apsidal motion is directly related to the internal structure constants of the binary components, its study allows getting insight into the internal structure of the stars. We use medium- and high-resolution spectroscopic observations of HD 165052 to provide constraints on the fundamental properties of the binary system and the evolutionary state of its components. We apply a spectral disentangling code to reconstruct artefact-free spectra of the individual stars and derive the radial velocities (RVs) at the times of the observations. We perform the first analysis of the disentangled spectra with the non-local thermodynamic equilibrium model atmosphere code CMFGEN to determine the stellar properties. We derive the first self-consistent orbital solution of all existing RV data, including those reported in the literature, accounting for apsidal motion. We build, for the very first time, dedicated stellar evolution tracks with the Clés code requesting the theoretical effective temperatures and luminosities to match those obtained from our spectroscopic analysis. The binary system HD 165052, consisting of an O6.5 V((f)) primary (T_eff =37 500 ±  1000 K) and an O7 V((f)) secondary (T_eff=36 000 ±  1000 K), displays apsidal motion at a rate of (11.30^{+0.64}_{-0.49})° yr−1. Evolutionary masses are compared to minimum dynamical masses to constrain the orbital inclination. Evolutionary masses M_{ev,P}=24.8 ± 1.0 Msun and M_{ev,S}=20.9 ± 1.0 Msun and radii R_{ev,P}=7.0^{+0.5}_{-0.4} Rsun and R_{ev,S}=6.2^{+0.4}_{-0.3} Rsun are derived, and the inclination is constrained to 22.1° ≤ i ≤ 23.3°. Theoretical apsidal motion rates, derived assuming an age of 2.0 ± 0.5 Myr for the binary, are in agreement with the observational determination. The agreement with theoretical apsidal motion rates enforces the inferred values of the evolutionary stellar masses and radii.
Research center :
STAR - Space sciences, Technologies and Astrophysics Research - ULiège
Disciplines :
Space science, astronomy & astrophysics
Author, co-author :
Rosu, Sophie  ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Groupe d'astrophysique des hautes énergies (GAPHE) ; Department of Physics, KTH Royal Institute of Technology, The Oskar Klein Centre , AlbaNova, SE-106 91 Stockholm, Sweden
Quintero, E A;  Departamento de Astronomía, Universidad de Guanajuato , Guanajuato, Mexico ; Observatorio Astronómico (OAUTP), Universidad Tecnológica de Pereira , Risaralda, Colombia
Rauw, Grégor  ;  Université de Liège - ULiège > Département d'astrophysique, géophysique et océanographie (AGO) > Groupe d'astrophysique des hautes énergies (GAPHE)
Eenens, P;  Departamento de Astronomía, Universidad de Guanajuato , Guanajuato, Mexico
Language :
English
Title :
New insight into the massive eccentric binary HD 165052: self-consistent orbital solution, apsidal motion, and fundamental parameters
Publication date :
14 March 2023
Journal title :
Monthly Notices of the Royal Astronomical Society
ISSN :
0035-8711
eISSN :
1365-2966
Publisher :
Oxford University Press (OUP)
Volume :
521
Issue :
2
Pages :
2988-3003
Peer reviewed :
Peer Reviewed verified by ORBi
Funders :
F.R.S.-FNRS - Fonds de la Recherche Scientifique [BE]
Available on ORBi :
since 30 March 2023

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