Solar-like to Antisolar Differential Rotation: A Geometric Interpretation
arXiv:2208.05591 · doi:10.3847/1538-4357/ac879f
Abstract
The solar convection zone rotates differentially, with its equatorial region rotating more rapidly than the polar regions. This form of differential rotation, also observed in many other low-mass stars, is understood to arise when Coriolis effects are stronger than those associated with buoyant driving of the convection. When buoyancy dominates, a so-called antisolar state of differential rotation results, characterized by rapidly-rotating poles and a slow equator. The transition between these two states has been shown to occur when the intensity of these two forces is roughly equal or, equivalently, when the convective Rossby number of the system is unity. Here we consider an alternative view of the transition that relates this phenomenon to convective structure and convective-zone depth. Using a series of 3-D rotating convection-zone simulations, we demonstrate that the solar/antisolar transition occurs when the columnar convective structures characteristic of rotating convection attain a diameter roughly equivalent to the shell depth. When the characteristic convective wavelength exceeds twice the shell depth, we find that the coherent convective structures necessary to sustain an equatorward Reynolds stress are lost, and an antisolar state results. We conclude by presenting a force-balance analysis that relates this geometric interpretation of the transition to the convective-Rossby-number criteria identified in previous studies.
16 pages, 9 figures, accepted for publication in ApJ
References in corpus (14)
- Large-scale magnetic topologies of early M dwarfs
- Meridional Circulation in Solar and Stellar Convection Zones
- A simulation of convective dynamo in the solar convective envelope: maintenance of the solar-like differential rotation and emerging flux
- Magnetically controlled stellar differential rotation near the transition from solar to anti-solar profiles
- Helioseismic Imaging of Fast Convective Flows Throughout the Near-Surface Shear Layer
- The Emergence of Solar Supergranulation as a Natural Consequence of Rotationally-Constrained Interior Convection
- Meridional Flow in the Solar Convection Zone II: Helioseismic Inversions of GONG Data
- Solar inertial modes: Observations, identification, and diagnostic promise
- Solar differential rotation reproduced with high-resolution simulation
- Antisolar differential rotation of the K1-giant sigma Geminorum revisited
- Differential Rotation in Magnetized and Non-magnetized Stars
- Latitudinal differential rotation in the solar analogues 16 Cyg A and B
- Anti-solar differential rotation on the active sub-giant HU Virginis
- Antisolar differential rotation with surface lithium enrichment on the single K-giant V1192 Orionis