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Low Mass Contact Binaries: Orbital Stability at Extreme Low Mass Ratios

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arxiv 2411.02020 v1 pith:IUJDYX65 submitted 2024-11-04 astro-ph.SR astro-ph.HE

Low Mass Contact Binaries: Orbital Stability at Extreme Low Mass Ratios

classification astro-ph.SR astro-ph.HE
keywords masscontactsystemsmetallicityorbitalpotentialstabilitybinaries
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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With the ever-increasing number of light curve solutions of contact binary systems increasing number of potential bright red nova progenitors are being reported. There remains, however, only one confirmed event. In the present study we undertake a comprehensive review of orbital stability of contact binary systems considering the effects of the stellar internal composition (metallicity) and age on the evolution of the gyration radius and its effect on the instability mass ratio of contact binaries. We find that both metallicity and age have an independent effect on orbital stability with metal poor and older systems being more stable. The combined effects of age and metallicity are quite profound such that for most systems with primaries of solar mass or greater which are halfway or more through the main sequence lifespans have instability mass ratio at levels where the secondary component would be below the hydrogen fusion mass limit. We find that from the currently available solutions we cannot confidently assign any system as unstable. Although we identify 8 potential red nova progenitors all have methodological or astrophysical concerns which lower our confidence in designating any of them as potential merger candidates.

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