Solar-like dynamos and rotational scaling of cycles from star-in-a-box simulations
arXiv:2202.04329 · doi:10.3847/2041-8213/ac6e6b
Abstract
Magnetohydrodynamic star-in-a-box simulations of convection and dynamos in a solar-like star with different rotation rates are presented. These simulations produce solar-like differential rotation with a fast equator and slow poles, and magnetic activity that resembles that of the Sun with equatorward migrating activity at the surface. Furthermore, the ratio of rotation to cycle period is almost constant as the rotation period decreases in the limited sample considered here. This is reminiscent of the suggested inactive branch of stars from observations and differs from most earlier simulation results from spherical shell models. While the exact excitation mechanism of the dynamos in the current simulations is not yet clear, it is plausible that the greater freedom that the magnetic field has due to the inclusion of the radiative core and regions exterior to the star are important in shaping the dynamo.
8 pages, 4 figures, submitted to AAS journals. Animation related to Fig. 2 is available as ancillary material
References in corpus (10)
- Array Programming with NumPy
- The case for a distributed solar dynamo shaped by near-surface shear
- Magnetic field generation in fully convective rotating spheres
- Mean-field concept and direct numerical simulations of rotating magnetoconvection and the geodynamo
- Magnetic Cycles in a Convective Dynamo Simulation of a Young Solar-type Star
- Introducing libeemd: A program package for performing the ensemble empirical mode decomposition
- Alpha effect and turbulent diffusion from convection
- On the cause of solar-like equatorward migration in global convective dynamo simulations
- Solar differential rotation reproduced with high-resolution simulation
- Stellar dynamo models with prominent surface toroidal fields