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Magnetohydrodynamic viscous fluid flow and heat transfer in a circular pipe under an externally applied constant suction

机译:磁流体动力学粘性流体在圆形管道中在外部施加恒定吸力下的流动和传热

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摘要

An analytical investigation of two-dimensional heat transfer behavior of an axisymmetric incompressible dissipative viscous fluid flow in a circular pipe is considered. The flow is subjected to an externally applied uniform suction over the pipe wall in the transverse direction and a constant magnetic field opposite to the wall. The reduced Navier-Stokes equations in the cylindrical system are applied for the velocity and temperature fields. Constant wall temperature is considered as the thermal boundary condition. The velocity components are expressed into stream function and its solution is acquired by the Homotopy analysis method (HAM). The effects of magnetic body force parameter(M), suction Reynolds number (Re), Prandtl number (Pr)and Eckert number (Ec) on velocity and temperature are examined and are presented in a graphical frame. Streamlines, isotherms and pressure contours are likewise pictured. It is observed that with increasing suction Reynold number decelerates axial flow, whereas it enhances the radial flow. The temperature distribution increases with an increase in Prandtl number, whereas it decreases with an increase in Eckert number (viscous dissipation effect).
机译:考虑了圆形管中轴对称不可压缩耗散粘性流体的二维传热行为的分析研究。流体在横向上受到外部作用在管壁上的均匀抽吸,并受到与管壁相反的恒定磁场的作用。将圆柱系统中的简化的Navier-Stokes方程应用于速度和温度场。恒定的壁温被认为是热边界条件。将速度分量表示为流函数,并通过同伦分析方法(HAM)获取其解。检查了磁力参数(M),吸力雷诺数(Re),普朗特数(Pr)和埃克特数(Ec)对速度和温度的影响,并在图形框中显示。同样画出了流线,等温线和压力等高线。可以看出,随着吸力的增加,雷诺数会降低轴向流量,而会增加径向流量。温度分布随Prandtl数的增加而增加,而随Eckert数的增加而减小(粘滞耗散效应)。

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