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Thermally inflated accretors in post-mass transfer binaries: Abell 35 and its class revisited

2026/03/31 by Soumyadeep Bhattacharjee, Kareem El-Badry, Jim Fuller +2
Physics and Astronomy · #astro-ph.SR #astro-ph.GA

paper · pdf

21 pages (including appendix), 2 tables, 18 figures. Added demonstrative MESA models with rotation. Accepted for publication in PASP. All codes and MESA inlists can be found in https://github.com/Soumin1908/InflatedStars_A35_MesaModels.git

arxiv created 2026/07/30 · arxiv updated 2026/07/31

Abstract

A small but growing class of binaries containing hot (T\rm eff∼105 \rm K) white dwarfs (WDs) and rapidly rotating, apparently subgiant companions -- including the prototype, Abell 35 -- show companions that are too large and luminous to be ordinary main-sequence stars yet too numerous to be explained as finely tuned near-twin binaries. We argue that these stars are instead main-sequence accretors temporarily inflated out of thermal equilibrium by recent mass transfer. For the subgiant of Abell 35, a new Gaia DR3 astrometric orbit (P\rm orb=790 \rm d), combined with updated photometric and spectroscopic constraints, yields T\rm eff≈4925±75 \rm K, R≈3±0.05 R\odot, near-solar metallicity, and rapid rotation aligned with the orbit (v\rm rot≈195±3 \rm km s-1), indicating substantial recent accretion and spin-up. Dynamical mass limits disfavor a coeval twin-binary origin, supporting the inflated-accretor interpretation. We test this scenario using self-consistent MESA binary evolution calculations with a new accretion prescription in which accreted material retains a fraction of its infall energy, rather than adopting the default assumption that its entropy equals that of the accretor's surface. The accretor expands to giant-like radii when M is high yet remains within its Roche lobe, allowing stable mass transfer even for mass ratios traditionally considered unstable. After mass transfer ceases, the star contracts on Myr timescales through a bloated, rapidly rotating phase whose temperatures, radii, and spins match those observed in Abell 35-type systems. This framework naturally explains the population and unifies Abell 35-type binaries with post-AGB binaries, blue lurkers, and wide WD+main-sequence systems as successive stages of the same post-mass-transfer evolutionary pathway.

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