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Combined Effects of Hall Current and Rotation on Unsteady Couette Flow in a Porous Channel

机译:霍尔电流和旋转对多孔通道中非稳态Couette流的综合影响

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The combined influences of Hall currents and rotation on the MHD Couette flow of a viscous incompressible electrically conducting fluid between two infinite horizontal parallel porous plates channel in a rotating system in the presence of a uniform transverse magnetic field have been carried out. The solutions for the velocity field as well as shear stresses have been obtained for small time as well as for large times by Laplace transform technique. It is found that for large times the Hall currents accelerates primary flow whereas it retards secondary flow while the rotation retards the primary flow whereas it accelerates the secondary flow. It is also found that the velocity components converge more rapidly for small time solution than the general solution. The asymptotic behavior of the solution is analyzed for small as well as large values of magnetic parameter M2, rotation parameter K2 and Reynolds number Re. It is observed that a thin boundary layer is formed near the moving plate of the channel and the thicknesses of the layer increases with increase in either Hall parameter m or Reynolds number Re while it decreases with increase in Hartmann number M. It is interesting to note that for large values of M2 , the boundary layer thickness is independent of the rotation parameter.
机译:在存在均匀横向磁场的情况下,已经对旋转系统中两个无限水平平行多孔板通道之间的粘性不可压缩导电流体的霍尔电流和旋转的MHD Couette流进行了综合影响。通过拉普拉斯变换技术,无论在短时间内还是长时间内,都获得了速度场和切应力的解。可以发现,霍尔电流在很大程度上会加速一次流动,而会阻碍二次流动,而旋转会阻碍一次流动,而会加速二次流动。还发现,在短时间解中,速度分量的收敛速度比常规解更快。对于磁参数M2,旋转参数K2和雷诺数Re的大小,分析溶液的渐近行为。可以看到,在通道的移动板附近形成了一个薄的边界层,并且该层的厚度随霍尔参数m或雷诺数Re的增加而增加,而随哈特曼数M的增加而减小。对于较大的M2值,边界层厚度与旋转参数无关。

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