A mapping method of age estimation for binary stars: Application to the $\alpha$ Centauri system A and B
Abstract
Given the wealth of data provided by Gaia and the upcoming PLATO mission, it is essential to improve stellar models to obtain accurate stellar ages. Our objective is to apply a mapping technique to estimate the age of a system and the initial chemical composition. We also evaluate the influence of observational uncertainties in mass and heavy-element mixtures on results. We applied an inverse calibration method to the evolution of a multiple stellar system, assuming that the stars share the same age and initial chemical composition. This approach determines age, the initial mass fractions of helium () and heavy elements (), as well as the convective mixing-length parameters ( and ). It uses the observed luminosities ( and ), radii ( and ), and surface chemical compositions ( and ). We used the most recent observational data for , , , and of Centauri A and B as input data for our method. We compared two assumptions for the ratio, following the results for the solar composition. For an assumed high solar , we obtain an age of Ga, , and . For a low solar , the derived age is Ga, , and . Observational errors in the stellar masses of 0.002 lead to an age error of 0.6 Ga. Overshooting of at the boundary of the convective core increases the age by Ga. Models with higher and radiative cores, with ages of Ga, appear preferable and show better agreement with the observed asteroseismic frequencies.
Cite
@article{arxiv.2602.08879,
title = {A mapping method of age estimation for binary stars: Application to the $\alpha$ Centauri system A and B},
author = {F. Thévenin and V. A. Baturin and A. V. Oreshina and P. Morel and S. V. Ayukov and L. Bigot and A. B. Gorshkov},
journal= {arXiv preprint arXiv:2602.08879},
year = {2026}
}
Comments
Accepted for publication in Astronomy and Astrophysics