Flow instabilities in the wide-gap spherical Couette system

被引:28
|
作者
Wicht, Johannes [1 ]
机构
[1] Max Planck Inst Sonnensyst Forsch, D-37191 Katlenburg Lindau, Germany
关键词
free shear layers; instability; rotating flows; NON-AXISYMMETRICAL INSTABILITIES; STEWARTSON LAYER; INERTIAL WAVES; NUMERICAL SIMULATIONS; INNER-CORE; DYNAMO; FLUID; ROTATION; GEOMETRY; SPHERES;
D O I
10.1017/jfm.2013.545
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The spherical Couette system is a spherical shell filled with a viscous fluid. Flows are driven by the differential rotation between the inner and the outer boundary that rotate with Omega and Omega + Delta Omega about a common axis. This setup has been proposed for second-generation dynamo experiments. We numerically explore the different instabilities emerging for rotation rates up to Omega = (1/3) x 10(7), venturing also into the nonlinear regime where oscillatory and chaotic solutions are found. The results provide a comprehensive overview of the possible flow regimes. For low values of Omega viscosity dominates and an equatorial jet in meridional circulation and zonal flow develops that becomes unstable as the differential rotation is increased beyond a critical value. For intermediate Omega and an inner boundary rotating slower than the outer one, new double-roll and helical instabilities are found. For large Omega values Coriolis effects enforce a nearly two-dimensional fundamental flow where a Stewartson shear layer develops at the tangent cylinder. This shear layer is the source of nearly geostrophic non-axisymmetric instabilities that resemble columnar Rossby modes. At first, the instabilities differ significantly depending on whether the inner boundary rotates faster (Delta Omega > 0) or slower (Delta Omega < 0) than the outer one. For very large outer boundary rotation rates, however, both instabilities once more become comparable. Fast inertial waves similar to those observed in recent spherical Couette experiments prevail for larger Omega values and Delta Omega < 0 in when Delta Omega and Omega are of comparable magnitude. For larger differential rotations Delta Omega >> Omega, however, the equatorial jet instability always takes over.
引用
收藏
页码:184 / 221
页数:38
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