Trends in torques acting on the star during a star-disk magnetospheric interaction
M. \v{C}emelji\'c, A.S. Brun

TL;DR
This study uses numerical simulations to analyze how different factors like magnetic field strength, resistivity, and stellar rotation influence the torques acting on stars during star-disk magnetospheric interactions, revealing key dependencies and transition points.
Contribution
It provides a detailed analysis of torque components and their dependence on parameters, highlighting the role of magnetospheric ejections and resistivity in star-disk interactions.
Findings
Torque on star independent of stellar rotation without ejections
Magnetospheric ejections cause torque proportional to rotation rate to the fourth power
Star switches from spin-up to spin-down at about 10% of Keplerian rotation rate
Abstract
We assess the modification of angular momentum transport in various configurations of star-disk accreting systems based on numerical simulations with different parameters. We quantify the torques exerted on a star by the various components of the flow in our simulations of a star-disk magnetospheric interaction. We obtained results using different stellar rotation rates, dipole magnetic field strengths, and resistivities. We probed a part of the parameter space with slowly rotating central objects, up to 20% of the Keplerian rotation rate at the equator. Different components of the flow in star-disk magnetospheric interaction were considered in the study: a magnetospheric wind (i.e., the ``stellar wind'') ejected outwards from the stellar vicinity, matter infalling onto the star through the accretion column, and a magnetospheric ejection launched from the magnetosphere. We also took…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Astro and Planetary Science · Magnetic and Electromagnetic Effects
