速度和热滑移条件下MHD黏性纳米流体在拉伸表面上的吸/吹数值分析

A. T. Alomai, M. Muhamad, M. M. Fayyadh, Hayder Jasim, H. Shaheed, M. Hakim, Ali A Abdulridha
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引用次数: 0

摘要

研究了吸力/吹气参数对磁流体在指数拉伸薄片上黏性流动的影响。在这项工作中,纳米流体流动的水基铜被认为是一个纳米颗粒。将辐射参数、速度和热滑移约束以及磁场进行相似变换,通过简化非线性偏微分方程近似求解非线性常微分方程。利用基于四五阶龙格-库塔-费伯格技术的Maple 18软件,对不同吸吹参数值下的速度和温度对不同剖面的数值结果进行了显示和分析。无因次速度随磁场、吸吹比和热滑移条件参数的增大而减小。温度分布随磁场、速度差和热辐射参数的增大而增强。最后,在实验中,速度和热滑移参数的增加对基流体传热的影响总体上是减小的,但在纳米流体中这种影响较小。或者,吸气/吹气参数的影响导致换热先减小后增大。
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Numerical Analysis of Suction/Blowing on MHD Viscousnanofluid Flow over Stretched Surface with Velocity and Thermal Slip Conditions
This paper studied the effects of suction/blowing parameters of magnetohydrodynamic (MHD) nanofluid’s viscous flow over an exponentially stretching sheet. In this work, nanofluid flow of water-based copper was considered as a nanoparticle. The radiation parameters, velocity and thermal slip constraint, and magnetic field were applied in similarity transformations to solve the nonlinear ordinary differential equations (ODEs) approximately by reducing the nonlinear partial differential equations (PDEs). The obtained numerical results of velocity and temperature against different values of suction/blowing parameters with varying profiles were displayed and analyzed by using Maple 18 software based on the fourth-fifth order Runge-Kutta Fehlberg technique with shooting method. The dimensionless Velocity decreased with the increasing magnetic field, suction/blowing, and thermal slip condition parameters. Whereas, the profiles of temperature intensified with the growing magnetic field, velocity slip and thermal radiation parameters. Finally, in the experiment, the effect of increased velocity and thermal slip parameters in general caused decrease in the heat transfer with base fluid, but in case of nanofluid this impact was lesser. Alternatively, it can be stated that the effect of suction/blowing parameter caused a decrease and then an increase in the heat transfer.
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