This paper examines the effects of coronal heating changes on angular momentum loss, suggesting implications for gyrochronology in solar-type stars.
Gyrochronology, a method for dating aged field stars (≳a few Gyr) based on their rotation rate, has recently been shown to fail for many stars older than the Sun. The explanation most often put forth is that a shutdown or mode change in the stellar dynamo leads to a sharp decrease in angular momentum loss in magnetized coronal winds. In this paper, we explore an alternate possibility, namely, a collapse of the wind itself through a reduction of coronal heating. We show that in the low coronal temperature ( T 0 ) limit, even at solar-like low rotation rates (Ω) and coronal magnetic field strength ( B r 0 ), magnetocentrifugal effects are important and preclude expression of the mass and angular momentum loss rates as power laws of T 0 or Ω when T 0 drops below ≃1.5 MK. Mass loss is found to scale linearly with power input into the wind at all coronal temperatures. Introducing an ad hoc power-law relationship T 0 ∝ B r 0 σ while retaining the “standard” dynamo relationship B r 0 ∝ Ω, we show that reproducing the observed break in gyrochronology requires an exponent σ ≳ 1.5, which is associated with a drop by over 3 orders of magnitude in power input into the quiet corona. This appears physically unrealistic, given current observations of chromospheric and coronal nonthermal emission in aged solar-type stars.
No takes yet. Share an insight, caveat, or question.
Lévesque et al. (2025) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: