Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
1995.
Spherical shell rotating convection in the presence of a toroidal magnetic field.
Proceedings of the Royal Society of London. Series A: Mathematical and Physical Sciences,
Vol. 448,
Issue. 1933,
p.
245.
Drew, S. J.
Jones, C. A.
and
Zhang, K.
1995.
Onset of convection in a rapidly rotating compressible fluid spherical shell.
Geophysical & Astrophysical Fluid Dynamics,
Vol. 80,
Issue. 3-4,
p.
241.
1996.
On small Roberts number magnetoconvection in rapidly rotating systems.
Proceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences,
Vol. 452,
Issue. 1947,
p.
981.
Zhang, K.
and
Gubbins, D.
1996.
Convection in a rotating spherical fluid shell with an inhomogeneous temperature boundary condition at finite Prandtl number.
Physics of Fluids,
Vol. 8,
Issue. 5,
p.
1141.
Greed, G. T.
and
Zhang, K.
1997.
An asymptotic theory for convection driven inertial waves in a rotating annulus.
Geophysical & Astrophysical Fluid Dynamics,
Vol. 86,
Issue. 1-4,
p.
75.
Tilgner, A.
and
Busse, F. H.
1997.
Finite-amplitude convection in rotating spherical fluid shells.
Journal of Fluid Mechanics,
Vol. 332,
Issue. ,
p.
359.
Zhang, Keke
and
Roberts, Paul H.
1997.
Thermal inertial waves in a rotating fluid layer: Exact and asymptotic solutions.
Physics of Fluids,
Vol. 9,
Issue. 7,
p.
1980.
Zhang, K.
and
Busse, F.H.
1997.
Convection in spherical fluid shells with an outer crust of variable thickness.
Physics of the Earth and Planetary Interiors,
Vol. 104,
Issue. 4,
p.
283.
Ardes, M.
Busse, F.H.
and
Wicht, J.
1997.
Thermal convection in rotating spherical shells.
Physics of the Earth and Planetary Interiors,
Vol. 99,
Issue. 1-2,
p.
55.
Zhang, K.
and
Greed, G. T.
1998.
Convection in rotating annulus: An asymptotic theory and numerical solutions.
Physics of Fluids,
Vol. 10,
Issue. 9,
p.
2396.
Bassom, Andrew P.
and
Zhang, Keke
1998.
Finite amplitude thermal inertial waves in a rotating fluid layer.
Geophysical & Astrophysical Fluid Dynamics,
Vol. 87,
Issue. 3-4,
p.
193.
Fearn, D R
1998.
Hydromagnetic flow in planetary cores.
Reports on Progress in Physics,
Vol. 61,
Issue. 3,
p.
175.
Tilgner, A.
1999.
Driven inertial oscillations in spherical shells.
Physical Review E,
Vol. 59,
Issue. 2,
p.
1789.
Cordero, S.
1999.
Convection in a rapidly rotating system: the smallinclination limit and its planetary applications.
Planetary and Space Science,
Vol. 47,
Issue. 3-4,
p.
451.
Miesch, Mark S.
2000.
Helioseismic Diagnostics of Solar Convection and Activity.
p.
59.
Gubbins, D.
Kent, D. V.
Laj, C.
Zhang, Keke
and
Gubbins, David
2000.
Scale disparities and magnetohydrodynamics in the Earth's core.
Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences,
Vol. 358,
Issue. 1768,
p.
899.
Roberts, P. H.
and
Jones, C. A.
2000.
The onset of magnetoconvection at large Prandtl number in a rotating layer I. Finite magnetic diffusion.
Geophysical & Astrophysical Fluid Dynamics,
Vol. 92,
Issue. 3-4,
p.
289.
Pino, David
Mercader, Isabel
and
Net, Marta
2000.
Thermal and inertial modes of convection in a rapidly rotating annulus.
Physical Review E,
Vol. 61,
Issue. 2,
p.
1507.
Zhang, Keke
and
Schubert, Gerald
2000.
Teleconvection: Remotely Driven Thermal Convection in Rotating Stratified Spherical Layers.
Science,
Vol. 290,
Issue. 5498,
p.
1944.
Zhang, Keke
and
Schubert, Gerald
2000.
Magnetohydrodynamics in Rapidly Rotating spherical Systems.
Annual Review of Fluid Mechanics,
Vol. 32,
Issue. 1,
p.
409.