Combined effects of rotation and translation on a MHD flow due to compressible viscous fluid |
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Authors: | S. Bhattacharyya |
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Affiliation: | (1) Department of Mathematics, Indian Institute of Technology, 721302 Kharagpur, India |
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Abstract: | Summary The modification of an axi-symmetric viscous flow due to a relative rotation of a disk or fluid by a translation of the boundary are studied. The fluid is taken to be compressible and electrically conducting. The equations governing the motion are solved iteratively through a central-difference scheme. The effect of an axial magnetic field and disk temperature on the flow and heat transfer are included in the present analysis. The translation of the disk or fluid generates a velocity field at each plane parallel to the disk (secondary flow). The cartesian components of the velocity due to the secondary flow are oscillatory in nature when a rigid body rotation of the free stream along with a translation of the disk is considered. The magnetic field damps out the velocity field, and reduces the thickness of the boundary layer. The cross component of wall shear due to secondary flow acts in a direction opposite to the rotation of the disk or fluid for all cases of the motion. The rise in disk temperature produces an increment in the magnitude of the wall shear associated with the secondary flow. |
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Keywords: | magnetohydrodynamics viscous flows heat transfer boundary layer numerical solution |
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