A 3D radiation-hydrodynamic AGB binary model
Zhuo Chen, Natalia Ivanova, Jonathan Carroll-Nellenback

TL;DR
This paper presents a 3D radiation-hydrodynamic model of AGB binary systems, revealing complex mass transfer processes, disk formation, and orbital evolution that improve understanding of chemically peculiar stars.
Contribution
It introduces a novel 3D radiation-hydrodynamic simulation framework for AGB binaries, capturing detailed mass transfer and disk formation mechanisms.
Findings
Mass transfer efficiency up to 8 times higher than standard BHL predictions
Formation of circumbinary disks linked to increased optical thickness
Outflows gain up to 91% of initial angular momentum
Abstract
The origin of chemically peculiar stars and non-zero eccentricity in evolved close binaries have been long-standing problems in binary stellar evolution. Answers to these questions may trace back to an intense mass transfer during AGB binary phase. In this work, we use AstroBEAR to solve the 3D radiation-hydrodynamic equations and calculate the mass transfer rate in asymptotic-giant-branch (AGB) binaries that undergo the wind-Roche-lobe-overflow or Bondi-Hoyle-Lyttleton (BHL) accretion. MESA produces the density and temperature of the boundary condition of the AGB star. To improve the resolution of the dynamics of a circumbinary disk, we implement an azimuthal angle-dependent 3D radiation transfer. We consider optically thin cooling and obtain the number density of the coolants by solving Saha equations. One of the goals of this work is to illustrate the transition from the…
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