Dynamics of the solar tachocline III: Numerical solutions of the Gough and McIntyre model
arXiv:1304.3167 · doi:10.1093/mnras/stt1065
Abstract
We present the first numerical simulations of the solar interior to exhibit a tachocline consistent with the Gough and McIntyre (1998) model. We find nonlinear, axisymmetric, steady-state numerical solutions in which: (1) a large-scale primordial field is confined within the radiation zone by downwelling meridional flows that are gyroscopically pumped in the convection zone (2) the radiation zone is in almost-uniform rotation, with a rotation rate consistent with observations (3) the bulk of the tachocline is magnetic free, in thermal-wind balance and in thermal equilibrium and (4) the interaction between the field and the flows takes place within a very thin magnetic boundary layer, the tachopause, located at the bottom of the tachocline. We show that the thickness of the tachocline scales with the amplitude of the meridional flows exactly as predicted by Gough and McIntyre. We also determine the parameter conditions under which such solutions can be obtained, and provide a simple explanation for the failure of previous numerical attempts at reproducing the Gough and McIntyre model. Finally, we discuss the implications of our findings for future numerical models of the solar interior, and for future observations of the Sun and other stars.
49 pages, 18 figures
References in corpus (13)
- Solar differential rotation and meridional flow: The role of a subadiabatic tachocline for the Taylor-Proudman balance
- Magnetic confinement of the solar tachocline
- Magnetic confinement of the solar tachocline: II. Coupling to a convection zone
- Numerical Simulations of Penetration and Overshoot in the Sun
- Dynamics of the solar tachocline II: the stratified case
- On the penetration of meridional circulation below the solar convection zone
- A model of the entropy flux and Reynolds stress in turbulent convection
- On the Penetration of Meridional Circulation below the Solar Convection Zone II: Models with Convection Zone, the Taylor-Proudman constraint and Applications to Other Stars
- Magnetic field confinement by meridional flow and the solar tachocline
- The Sun's meridional circulation and interior magnetic field
- Polar confinement of the Sun's interior magnetic field by laminar magnetostrophic flow
- Transport by meridional circulations in solar-type stars
- On Limiting the Thickness of the Solar Tachocline
Cited by in corpus (20)
- Rotation rate of the solar core as a key constraint to magnetic angular momentum transport in stellar interiors
- Anisotropic turbulent transport in stably stratified rotating stellar radiation zones
- Magnetic signatures on mixed-mode frequencies. I. An axisymmetric fossil field inside the core of red giants
- Characterizing the propagation of gravity waves in 3D nonlinear simulations of solar-like stars
- Magnetic braking of stellar cores in red giants and supergiants
- Horizontal shear instabilities in rotating stellar radiation zones: II. Effects of the full Coriolis acceleration
- Magnetic signatures on mixed-mode frequencies. II. Period spacings as a probe of the internal magnetism of red giants
- Spin-down dynamics of magnetized solar-type stars
- Confinement of the solar tachocline by a cyclic dynamo magnetic field
- Inversions of the Ledoux discriminant: a closer look at the tachocline
- A self-consistent model of the solar tachocline
- On the dynamics of overshooting convection in spherical shells: Effect of density stratification and rotation
- Some glimpses from helioseismology at the dynamics of the deep solar interior
- Two types of axisymmetric helical magnetorotational instability in rotating flows with positive shear
- Angular momentum transport in a contracting stellar radiative zone embedded in a large scale magnetic field
- On obliquely magnetized and differentially rotating stars
- The 2D dynamics of radiative zones of low-mass stars
- On the dynamical interaction between overshooting convection and an underlying dipole magnetic field -- I. The non-dynamo regime
- Confinement of the Solar Tachocline by Dynamo Action in the Radiative Interior
- 2D dynamics of the radiative core of low mass stars