Unravelling Mass Transfer in Algols from Surface Abundances. I. Z Vulpeculae
Ahmet Dervişoğlu, Simge Adalalı, Ferhat Güney, Barış Hoyman, Timur Şahin, Ömür Çakırlı, Kresimir Pavlovski, David Mkrtichian, Peter De Cat, Patricia Lampens
astro-ph.SR
Submitted: 2026-08-04
Comments: Accepted in MNRAS
Code: https://github.com/dervisoglu/pegasus
License: http://creativecommons.org/licenses/by/4.0/
The gist: The photospheric abundance pattern of the components is a sensitive probe of mass and angular momentum transfer in Algols.
Terminology
Abstract
The photospheric abundance pattern of the components is a sensitive probe of mass and angular momentum transfer in Algols. With the aim to trace the evolutionary history and disclosed efficiency of mass transfer in Algols we collected new high-resolution spectra for about a dozen Algols with the hermes spectrograph at the Mercator Telescope on La Palma, Canary Islands. In the present paper, which is the first in the series, we present the results of a comprehensive analysis of Z Vul, a hot Algol-type system. We derived the absolute stellar quantities and elemental abundances for the components. The carbon-to-nitrogen (C/N) ratio is the most sensitive tracer of thermonuclear processing and mass transfer. It is found to be within expected value for gainer but donor lacks the severe C/N inversion traditionally expected for a deeply stripped star. An extensive grid of over three million evolutionary models was calculated with the Cambridge STARS code which allows determination of the best-fitting and all surviving models. Constraints from the He and CNO abundances indicate that Z Vul underwent an episode of nearly conservative mass transfer during the Main Sequence life-time of the originally more massive component (Case A). Our detailed chemical tagging confirms that the surface abundances of the mass-losing component represent the delicately stripped outer layers still not reaching the CNO-rich core. This underscores the need of coupling high-resolution spectroscopic abundances with interior stellar profiles to accurately reconstruct the evolutionary history of interacting binaries.
Sources
- The IACOB project: XVII. Nitrogen abundances in Galactic O-type stars: further hints for separating binary-interaction products from effectively single stars
- Non-conservative Mass Transfer as a Formation Channel for Gaia Black Hole System
- Reconstruction and Analysis of Component Spectra of Binary and Multiple Stars
- The IACOB project: XVI. Surface helium abundances in Galactic O-type stars: indications for identifying binary interaction products
- Stable mass transfer in massive binaries leading to merging black holes
- Critically rotating stars in binaries - an unsolved problem -
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