On the dynamics of overshooting convection in spherical shells: Effect of density stratification and rotation
arXiv:2110.05432 · doi:10.3847/1538-4357/ac2dea
Abstract
Overshooting of turbulent motions from convective regions into adjacent stably stratified zones plays a significant role in stellar interior dynamics as this process may lead to mixing of chemical species, and contribute to the transport of angular momentum and magnetic fields. We present a series of fully non-linear, three-dimensional (3D) anelastic simulations of overshooting convection in a spherical shell which are focused on the dependence of the overshooting dynamics on the density stratification and the rotation, both key ingredients in stars which however have not been studied systematically together via global simulations. We demonstrate that the overshoot lengthscale is not simply a monotonic function of the density stratification in the convective region but instead, it depends on the ratio of the density stratifications in the two zones. Additionally, we find that the overshoot lengthscale decreases with decreasing Rossby number Ro and scales as Ro while it also depends on latitude with higher Rossby cases leading to a weaker latitudinal variation. We examine the mean flows arising due to rotation and find that they extend beyond the base of the convection zone into the stable region. Our findings may provide a better understanding of the dynamical interaction between stellar convective and radiative regions, and motivate future studies particularly related to the solar tachocline and the implications of its overlapping with the overshoot region.
Accepted to ApJ
References in corpus (17)
- Global-Scale Turbulent Convection and Magnetic Dynamo Action in the Solar Envelope
- Solar differential rotation and meridional flow: The role of a subadiabatic tachocline for the Taylor-Proudman balance
- Flux-transport dynamos with Lorentz force feedback on differential rotation and meridional flow: Saturation mechanism and torsional oscillations
- Simulations of core convection in rotating A-type stars: Magnetic dynamo action
- Meridional Circulation in Solar and Stellar Convection Zones
- On differential rotation and overshooting in solar-like stars
- 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
- Numerical Simulations of Penetration and Overshoot in the Sun
- Solar inertial modes: Observations, identification, and diagnostic promise
- Lithium depletion in solar-like stars: effect of overshooting based on realistic multi-dimensional simulations
- Solar overshoot region and small-scale dynamo with realistic energy flux
- Extreme value statistics for two-dimensional convective penetration in a pre-Main Sequence star
- A model of rotating convection in stellar and planetary interiors: I - convective penetration
- A calibration of the Rossby number from asteroseismology
- The Breakdown of the Anelastic Approximation in Rotating Compressible Convection: Implications for Astrophysical Systems
- An improved multi-ridge fitting method for ring-diagram helioseismic analysis
Cited by in corpus (6)
- An Atlas of Convection in Main-Sequence Stars
- Mixed Mode Asteroseismology of Red Giant Stars Through the Luminosity Bump
- Stellar evolution models with overshooting based on 3-equation non-local theories I. Physical basis and the computation of the dissipation rate
- Effect of Rotation on Wave Mixing in Intermediate Mass Stars
- The impact of rotation on the stochastic excitation of stellar acoustic modes in solar-like pulsators
- Discovery of new magnetic δ Scuti stars and impact of magnetism on pulsation excitation