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Main Author: Matsumoto, Tomoaki
Format: Preprint
Published: 2024
Subjects:
Online Access:https://arxiv.org/abs/2402.03212
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author Matsumoto, Tomoaki
author_facet Matsumoto, Tomoaki
contents The formation of binary stars is highly influenced by magnetic fields, which play a crucial role in transporting angular momentum. We conducted three-dimensional numerical simulations of binary star accretion via a circumbinary disk, taking into account a magnetic field perpendicular to the disk and an infalling envelope. Our simulations reproduce the following phenomena: (1) spiral arms associated with circumstellar disks, (2) turbulence in the circumbinary disk, induced by magneto-rotational instability (MRI), (3) a fast outflow launched from each circumstellar disk, and (4) a slow outflow from the circumbinary disk. The binary models exhibit a higher $α$-parameter than the corresponding single star models, indicating that the binary stars enhance MRI turbulence. Moreover, an infalling envelope also enhance the turbulence, leading to a high $α$-parameter. While the spiral arms promotes radial flow, causing transfer of mass and angular momentum within the circumbinary disk, the MRI turbulence and outflows are main drivers of angular momentum transfer to reduce the specific angular momentum of the system.
format Preprint
id arxiv_https___arxiv_org_abs_2402_03212
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Angular Momentum Transport in Binary Star Formation: The Enhancement of Magneto-Rotational Instability and Role of Outflows
Matsumoto, Tomoaki
Solar and Stellar Astrophysics
The formation of binary stars is highly influenced by magnetic fields, which play a crucial role in transporting angular momentum. We conducted three-dimensional numerical simulations of binary star accretion via a circumbinary disk, taking into account a magnetic field perpendicular to the disk and an infalling envelope. Our simulations reproduce the following phenomena: (1) spiral arms associated with circumstellar disks, (2) turbulence in the circumbinary disk, induced by magneto-rotational instability (MRI), (3) a fast outflow launched from each circumstellar disk, and (4) a slow outflow from the circumbinary disk. The binary models exhibit a higher $α$-parameter than the corresponding single star models, indicating that the binary stars enhance MRI turbulence. Moreover, an infalling envelope also enhance the turbulence, leading to a high $α$-parameter. While the spiral arms promotes radial flow, causing transfer of mass and angular momentum within the circumbinary disk, the MRI turbulence and outflows are main drivers of angular momentum transfer to reduce the specific angular momentum of the system.
title Angular Momentum Transport in Binary Star Formation: The Enhancement of Magneto-Rotational Instability and Role of Outflows
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2402.03212