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Interferometric Survey of Stellar Parameters: Mass of the metallic A-type binary ββ Aur

Published 3 Sep 2026 in astro-ph.SR | (2609.03886v1)

Abstract: With the capabilities of the new visible CHARA/SPICA instrument and the multiple spectral band operation of CHARA, our goal is to resolve orbits of short-period binaries and develop a robust framework for combining interferometric, spectroscopic, and photometric observations into a single consistent model. For our target sample, we selected suitable binaries based on brightness, angular separation, and orbital properties based on the expected performance of the CHARA/SPICA instrument. As a case study, we analysed the bright eclipsing binary ββ Aurigae, composed of two slightly evolved A1 stars. We combined new interferometric observations of ββ Aur obtained with CHARA/SPICA, MIRC-X, and MYSTIC with archival MIRC data, radial velocities, and light curves. We first derived astrometric positions from interferometric observables and computed an orbital solution. Afterwards, we implemented a unified model, capable of tying interferometric modelling with the ellc code to simultaneously fit all observables using MCMC sampling. We performed a detailed analysis of the noise statistics of each data set and in the end we adopted a profile likelihood approach to account for underestimated noise and systematics. We derived a consistent orbital and physical solution for ββ Aur through joint modelling. The inclusion of interferometric data tightly constrains the angular semi-major axis and inclination. Using profile likelihood to account for the different intrinsic levels of uncertainty of the fundamentally different observables, we derived the masses of the two stars, M1=2.359±0.005M_1 = 2.359 \pm 0.005 MS_S and M2=2.293±0.004M_2 = 2.293 \pm 0.004 MS_S, their radii R1=2.752±0.002R_1 = 2.752 \pm 0.002 RS_S and R2=2.622±0.002R_2 = 2.622 \pm 0.002 RS_S, and the distance to the binary, d=24.30±0.05d = 24.30\pm0.05 pc.

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