Title of article :
Rotating Rayleigh–Bénard convection under the influence of transverse magnetic field
Author/Authors :
Hirdesh Varshney، نويسنده , , Mirza Faisal Baig، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2008
Abstract :
In the present numerical study the effect of constant transverse magnetic field on convection of low Prandtl number liquid metal rotating in a cubical cavity with an aspect-ratio of 8:8:1 has been investigated. The bottom wall is heated while the top-wall is cooled and all the other walls are kept thermally insulated. The governing equations of mass, momentum, energy and magneto-hydrodynamic for a frame rotating with the enclosure, subject to Boussinesq approximation applied to gravity and centrifugal force terms, have been solved on a collocated grid using a semi-implicit finite difference method. The simulations have been carried out for liquid metal flows having a fixed Prandtl number image, Rayleigh number image, and magnetic Prandtl number image while Chandrasekhar number Q varies from image to image and non-dimensional rotation rate image is varied from zero to image.
The increase in strength of transverse magnetic field (from image to image) till image leads to slight increase in convective heat transfer as well as formation of two-dimensional coherent structures aligned along the direction of magnetic field. For cases pertaining to image the two-dimensionality of the flow breaks down and the rolls distort in their alignment which leads to decrease in magnitude of vertical heat transfer. For cases where image, the increased Coriolis forces lead to generation of large-scale circulation which forms a large cylindrical rotating column of fluid in consonance with Taylor–Proudman theorem. On increasing the strength of magnetic field the component of rms velocity in the direction of magnetic field gets suppressed while there is increase in other two components.
Keywords :
Coriolis forces , Two-dimensional coherent structures , Rotating Rayleigh–Bénard convection , Transverse magnetic field
Journal title :
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER
Journal title :
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER