Effect of Differential Rotation on Magnetic Braking of Low-Mass and Solar-Like Stars: A Proof-of-Concept Study
arXiv:2111.11082 · doi:10.3847/1538-4357/ac3a71
Abstract
On the main sequence, low-mass and solar-like stars are observed to spin-down over time, and magnetized stellar winds are thought to be predominantly responsible for this significant angular momentum loss. Previous studies have demonstrated that the wind torque can be predicted via formulations dependent on stellar properties, such as magnetic field strength and geometry, stellar radius and mass, wind mass-loss rate, and stellar rotation rate. Although these stars are observed to experience surface differential rotation, torque formulations so far have assumed solid-body rotation. Surface differential rotation is expected to affect the rotation of the wind and thus the angular momentum loss. To investigate how differential rotation affects the torque, we use the PLUTO code to perform 2.5D magnetohydrodynamic, axisymmetric simulations of stellar winds, using a colatitude-dependent surface differential rotation profile that is solar-like (i.e., rotation is slower at the poles than the equator). We demonstrate that the torque is determined by the average rotation rate in the wind, so that the net torque is less than that predicted by assuming solid-body rotation at the equatorial rate. The magnitude of the effect is essentially proportional to the magnitude of the surface differential rotation, for example, resulting in a torque for the Sun that is smaller than predicted by the solid-body assumption. We derive and fit a semi-analytic formulation that predicts the torque as a function of the equatorial spin rate, magnitude of differential rotation, and wind magnetization (depending on the dipolar magnetic field strength and mass-loss rate, combined).
15 pages, 7 figures
References in corpus (12)
- PLUTO: a Numerical Code for Computational Astrophysics
- Large-scale magnetic topologies of late M dwarfs
- The effect of magnetic topology on thermally-driven winds: towards a general formulation of the braking law
- Accretion-Powered Stellar Winds II: Numerical Solutions for Stellar Wind Torques
- Lithium depletion and the rotational history of exoplanet host stars
- On differential rotation and overshooting in solar-like stars
- New Observational Constraints on the Winds of M Dwarf Stars
- Estimating magnetic filling factors from Zeeman-Doppler magnetograms
- The open flux evolution of a solar-mass star on the main sequence
- Estimating stellar wind parameters from low-resolution magnetograms
- Statistical Fitting of Evolution Models to Rotation Rates of Sun-Like Stars
- Solar wind rotation rate and shear at coronal hole boundaries, possible consequences for magnetic field inversions
Cited by in corpus (6)
- COCONUT, a novel fast-converging MHD model for solar corona simulations: I. Benchmarking and optimization of polytropic solutions
- Magnetic braking with MESA evolutionary models in the single star and LMXB regimes
- Evolution of solar wind sources and coronal rotation driven by the cyclic variation of the Sun's large-scale magnetic field
- Transition of latitudinal differential rotation as a possible cause of weakened magnetic braking of solar-type stars
- Accounting for Differential Rotation in Calculations of the Sun's Angular Momentum-loss Rate
- Reconstructing the Sun's Alfvén surface and wind braking torque with Parker Solar Probe