2013
DOI: 10.1177/0954406213512628
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Micropolar fluid flow and heat transfer about a spinning cone with Hall current and Ohmic heating

Abstract: In this paper, the laminar boundary layer flow of an electrically conducting micropolar fluid about a spinning cone with Hall current, Ohmic heating, and power-law variation in surface temperature is studied analytically. The governing equations are transformed into a dimensionless system of four nonlinear coupled partial differential equations. These equations have been solved analytically subject to the relevant boundary conditions by employing homotopy analysis method. The convergence of the obtained series… Show more

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Cited by 3 publications
(1 citation statement)
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“…Due to several practical implications, many researchers have taken an interest in analyzing the impact of micropolar fluid on boundary-layer problems with different flow geometries. Furthermore, Singh et al 6 have worked on the permeable wedge, Dinarvand et al 8 have investigated over a spinning cone, Das 9 have explored slip impacts on magnetohydrodynamic (MHD) combined convection on a shrinking vertical sheet. Also, Gorla and Nakamura have worked on a rotating cone, 10 Mahdy has worked on a permeable cone, 11 and Rashad et al 12 have worked on a moving vertical surface.…”
mentioning
confidence: 99%
“…Due to several practical implications, many researchers have taken an interest in analyzing the impact of micropolar fluid on boundary-layer problems with different flow geometries. Furthermore, Singh et al 6 have worked on the permeable wedge, Dinarvand et al 8 have investigated over a spinning cone, Das 9 have explored slip impacts on magnetohydrodynamic (MHD) combined convection on a shrinking vertical sheet. Also, Gorla and Nakamura have worked on a rotating cone, 10 Mahdy has worked on a permeable cone, 11 and Rashad et al 12 have worked on a moving vertical surface.…”
mentioning
confidence: 99%