Prandtl number dependence of convection driven dynamos in rotating spherical fluid shells
arXiv:0910.4493 · doi:10.1017/S0022112005004398
Abstract
The value of the Prandtl number exerts a strong influence on convection-driven dynamos in rotating spherical shells filled with electrically conducting fluids. Low Prandtl numbers promote dynamo action through the shear provided by differential rotation, while the generation of magnetic fields is more difficult to sustain in high-Prandtl-number fluids where higher values of the magnetic Prandtl number are required. The magnetostrophic approximation often used in dynamo theory appears to be valid only for relatively high values of and . Dynamos with a minimum value of seem to be most readily realizable in the presence of convection columns at moderately low values of . The structure of the magnetic field varies strongly with in that dynamos with a strong axial dipole field are found for high values of while the energy of this component is exceeded by that of the axisymmetric toroidal field and by that of the non-axisymmetric components at low values of . Some conclusions are discussed in relation to the problem of the generation of planetary magnetic fields by motions in their electrically conducting liquid cores.
References in corpus (2)
Cited by in corpus (14)
- Bistability and hysteresis of dipolar dynamos generated by turbulent convection in rotating spherical shells
- Parameter dependences of convection driven dynamos in rotating spherical fluid shells
- Formation of starspots in self-consistent global dynamo models: Polar spots on cool stars
- Anelastic spherical dynamos with radially variable electrical conductivity
- Toroidal flux oscillation as possible cause of geomagnetic excursions and reversals
- Spherical-shell boundaries for two-dimensional compressible convection in a star
- Double-diffusive convection in a rotating cylindrical annulus with conical caps
- Effects of shell thickness on cross-helicity generation in convection-driven spherical dynamos
- Planetary dynamos
- Dynamos of giant planets
- Can cellular convection in a rotating spherical shell maintain both global and local magnetic fields?
- Turbulent 3D MHD dynamo model in spherical shells: Regular oscillations of the dipolar field
- A study of global magnetic helicity in self-consistent spherical dynamos
- Differential rotation in convecting spherical shells with non-uniform viscosity and entropy diffusivity