Differential rotation in convecting spherical shells with non-uniform viscosity and entropy diffusivity
arXiv:2311.12957 · doi:10.3390/fluids8110288
Abstract
Contemporary three-dimensional physics-based simulations of the solar convection zone disagree with observations. They feature differential rotation substantially different from the true rotation inferred by solar helioseismology and exhibit a conveyor belt of convective "Busse" columns not found in observations. To help unravel this so-called "convection conundrum", we use a three-dimensional pseudospectral simulation code to investigate how radially non-uniform viscosity and entropy diffusivity affect differential rotation and convective flow patterns in density-stratified rotating spherical fluid shells. We find that radial non-uniformity in fluid properties enhances polar convection, which, in turn, induces non-negligible lateral entropy gradients that lead to large deviations from differential rotation geostrophy due to thermal wind balance. We report simulations wherein this mechanism maintains differential rotation patterns very similar to the true solar profile outside the tangent cylinder, although discrepancies remain at high latitudes. This is significant because differential rotation plays a key role in sustaining solar-like cyclic dipolar dynamos.
References in corpus (10)
- Global-Scale Turbulent Convection and Magnetic Dynamo Action in the Solar Envelope
- Structure and Evolution of Giant Cells in Global Models of Solar Convection
- Prandtl number dependence of convection driven dynamos in rotating spherical fluid shells
- Magnetically controlled stellar differential rotation near the transition from solar to anti-solar profiles
- Powering Stellar Magnetism: Energy Transfers in Cyclic Dynamos of Sun-like Stars
- Parameter dependences of convection driven dynamos in rotating spherical fluid shells
- Patterns of convection in rotating spherical shells
- Inertial convection in rotating fluid spheres
- Helioseismology challenges models of solar convection
- Numerical evidence for a small-scale dynamo approaching solar magnetic Prandtl numbers