Persistent Magnetic Wreaths in a Rapidly Rotating Sun
arXiv:1011.2831 · doi:10.1088/0004-637X/711/1/424
Abstract
When our Sun was young it rotated much more rapidly than now. Observations of young, rapidly rotating stars indicate that many possess substantial magnetic activity and strong axisymmetric magnetic fields. We conduct simulations of dynamo action in rapidly rotating suns with the 3-D MHD anelastic spherical harmonic (ASH) code to explore the complex coupling between rotation, convection and magnetism. Here we study dynamo action realized in the bulk of the convection zone for a system rotating at three times the current solar rotation rate. We find that substantial organized global-scale magnetic fields are achieved by dynamo action in this system. Striking wreaths of magnetism are built in the midst of the convection zone, coexisting with the turbulent convection. This is a surprise, for it has been widely believed that such magnetic structures should be disrupted by magnetic buoyancy or turbulent pumping. Thus, many solar dynamo theories have suggested that a tachocline of penetration and shear at the base of the convection zone is a crucial ingredient for organized dynamo action, whereas these simulations do not include such tachoclines. We examine how these persistent magnetic wreaths are maintained by dynamo processes and explore whether a classical mean-field -effect explains the regeneration of poloidal field.
17 pages, 9 figures, 1 appendix, emulateapj format; published version of sections 3-4, 7 and appendix from arXiv:0906.2407
References in corpus (17)
- Constraining the Age-Activity Relation for Cool Stars: The SDSS DR5 Low-Mass Star Spectroscopic Sample
- Global-Scale Turbulent Convection and Magnetic Dynamo Action in the Solar Envelope
- The case for a distributed solar dynamo shaped by near-surface shear
- Simulations of dynamo action in fully convective stars
- Toroidal versus poloidal magnetic fields in Sun-like stars: a rotation threshold
- The First Direct Measurements of Magnetic Fields on Very Low-Mass Stars
- The large-scale axisymmetric magnetic topology of avery-low-mass fully-convective star
- Solar differential rotation and meridional flow: The role of a subadiabatic tachocline for the Taylor-Proudman balance
- Accretion-Powered Stellar Winds II: Numerical Solutions for Stellar Wind Torques
- Simulations of core convection in rotating A-type stars: Magnetic dynamo action
- Rapidly Rotating Suns and Active Nests of Convection
- On the magnetic topology of partially and fully convective stars
- On the role of meridional flows in flux transport dynamo models
- Large-scale Dynamo Action Driven by Velocity Shear and Rotating Convection
- Simulations of turbulent convection in rotating young solar-like stars: Differential rotation and meridional circulation
- Advances in theory and simulations of large-scale dynamos
- How does the shape and thickness of the tachocline affect the distribution of the toroidal magnetic fields in the solar dynamo?
Cited by in corpus (6)
- Magnetic Cycles in a Convective Dynamo Simulation of a Young Solar-type Star
- Magnetic confinement of the solar tachocline: II. Coupling to a convection zone
- Magnetic helicity fluxes in an alpha-squared dynamo embedded in a halo
- Shear-driven and diffusive helicity fluxes in alpha-Omega dynamos
- Turbulent transport in hydromagnetic flows
- On global solar dynamo simulations