Apsidal motion and proximity effects in the massive binary BD+60 497
arXiv:2509.12762 · doi:10.1051/0004-6361/202556197
Abstract
The eccentric short-period O-star binary BD+60 497 is an interesting laboratory in which to study tidal interactions in massive binary systems, notably via the detection and characterisation of apsidal motion. The rate of apsidal motion in such systems can help constrain their age and provide insight into the degree of mass concentration in the interior of massive stars. We used spectroscopic data collected over two decades to reconstruct the individual spectra of the stars and to establish their epoch-dependent radial velocities. An orbital solution, explicitly accounting for apsidal motion was adjusted to the data. Space-borne photometric time series were analysed with Fourier methods and with binary models. We derived a rate of apsidal motion of degree/yr, which suggests an age of Myr. The disentangled spectra unveiled a curious change in the spectral properties of the secondary star between the epochs 2002-2003 and 2018-2022 with the secondary spectrum appearing to be of an earlier spectral type over recent years. Photometric data show variability at the 6 mmag level on the period of the binary system, which is hard to explain in terms of proximity effects. Whilst the rate of apsidal motion agrees well with theoretical expectations, the changes in the reconstructed secondary spectrum hint at a highly non-uniform surface temperature distribution for this star. Different effects are discussed that could contribute to the photometric variations. The current most-likely explanation is a mix of proximity effects and tidally excited oscillations
Accepted for publication in A&A
References in corpus (50)
- The chemical composition of the Sun
- The Gaia mission
- Modules for Experiments in Stellar Astrophysics (MESA)
- Gaia Data Release 3: Summary of the content and survey properties
- The Transiting Exoplanet Survey Satellite
- Modules for Experiments in Stellar Astrophysics (MESA): Giant Planets, Oscillations, Rotation, and Massive Stars
- Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions
- MESA Isochrones and Stellar Tracks (MIST). I: Solar-Scaled Models
- Modules for Experiments in Stellar Astrophysics (MESA): Convective Boundaries, Element Diffusion, and Massive Star Explosions
- Estimating distances from parallaxes. V: Geometric and photogeometric distances to 1.47 billion stars in Gaia Early Data Release 3
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- A new calibration of stellar parameters of Galactic O stars
- Presupernova Evolution of Differentially Rotating Massive Stars Including Magnetic Fields
- A Grid of NLTE Line-Blanketed Model Atmospheres of O-type Stars
- Gaia Data Release 1: Astrometry - one billion positions, two million proper motions and parallaxes
- Modules for Experiments in Stellar Astrophysics (MESA): Time-Dependent Convection, Energy Conservation, Automatic Differentiation, and Infrastructure
- The High Angular Resolution Multiplicity of Massive Stars
- The Galactic O-Star Spectroscopic Survey. I. Classification System and Bright Northern Stars in the Blue-Violet at R~2500
- UBVJHK synthetic photometry of Galactic O stars
- Improving the open cluster census. III. Using cluster masses, radii, and dynamics to create a cleaned open cluster catalogue
- Fourier method in the determination of rotational velocities in OB stars
- Magnetic spots on hot massive stars
- New predictions for radiation-driven, steady-state mass-loss and wind-momentum from hot, massive stars II. A grid of O-type stars in the Galaxy and the Magellanic Clouds
- A 3D dynamical model of the colliding winds in binary systems
- X-ray emission from interacting massive binaries: a review of 15 years of progress
- Optical-NIR dust extinction towards Galactic O stars
- Binary and Multiple O-Type Stars in the Cas OB6 Association
- The Tarantula Massive Binary Monitoring VI: Characterisation of hidden companions in 51 single-lined O-type binaries, a flat mass-ratio distribution, and black-hole binary candidates
- Binary Stars in the New Millennium
- The Most Massive Heartbeat: An In-depth Analysis of ι Orionis
- High-resolution imaging of Galactic massive stars with AstraLux. I. 138 fields with delta > -25 degrees
- Excitation of oscillation modes by tides in close binaries: constraints on stellar and orbital parameters
- The Tarantula Massive Binary Monitoring. IV. Double-lined photometric binaries
- Massive heartbeat stars from TESS. I. TESS sectors 1-16
- Updating the theoretical tidal evolution constants: Apsidal motion and the moment of inertia
- Analysis of apsidal motion in eclipsing binaries using TESS data II. A test of internal stellar structure}
- The dominant X-ray wind in massive star binaries
- Spectral modelling of massive binary systems
- An Optical and Infrared Photometric Study of the Young Open Cluster IC 1805 in the Giant H II Region W4
- Apsidal motion in the massive binary HD152218
- Apsidal motion in the massive binary HD 152248 -- Constraining the internal structure of the stars
- X-ray and optical spectroscopy of the massive young open cluster IC1805
- Apsidal motion in the massive binary HD152248
- Revised physical elements of the astrophysically important O9.5+O9.5V eclipsing binary system Y Cyg
- Theoretical investigation of the occurrence of tidally excited oscillations in massive eccentric binary systems
- First apsidal motion and light curve analysis of 162 eccentric eclipsing binaries from LMC
- Extreme mass ratios and fast rotation in three massive binaries
- BEER analysis of Kepler and CoRoT light curves. V. eBEER: Extension of the Algorithm to Eccentric Binaries
- Exploring extreme brightness variations in blue supergiant MACHO 80.7443.1718: Evidence for companion-driven enhanced mass loss
- New insight into the massive eccentric binary HD 165052: self-consistent orbital solution, apsidal motion, and fundamental parameters