English

An abrupt change in the stellar spin-down law at the fully convective boundary

Solar and Stellar Astrophysics 2023-06-16 v1

Abstract

The importance of the existence of a radiative core in generating a solar-like magnetic dynamo is still unclear. Analytic models and magnetohydrodynamic simulations of stars suggest the thin layer between a star's radiative core and its convective zone can produce shearing that reproduces key characteristics of a solar-like dynamo. However, recent studies suggest fully and partially convective stars exhibit very similar period-activity relations, hinting that dynamos generated by stars with and without radiative cores hold similar properties. Here, using kinematic ages, we discover an abrupt change in the stellar spin-down law across the fully convective boundary. We found that fully convective stars exhibit a higher angular momentum loss rate, corresponding to a torque that is \sim 2.25 times higher for a given angular velocity than partially convective stars around the fully convective boundary. This requires a dipole field strength that is larger by a factor of \sim2.5, a mass loss rate that is \sim4.2 times larger, or some combination of both of those factors. Since stellar-wind torques depend primarily on large-scale magnetic fields and mass loss rates, both of which derive from magnetic activity, the observed abrupt change in spin-down law suggests that the dynamos of partially and fully convective stars may be fundamentally different

Keywords

Cite

@article{arxiv.2306.09119,
  title  = {An abrupt change in the stellar spin-down law at the fully convective boundary},
  author = {Yuxi Lu and Victor See and Louis Amard and Ruth Angus and Sean P. Matt},
  journal= {arXiv preprint arXiv:2306.09119},
  year   = {2023}
}

Comments

Under review at Nature Astronomy