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Computational Modelling of Couette Flow of Nanofluids with Viscous Heating and Convective Cooling

机译:粘性加热和对流冷却的纳米流体库埃特流计算模型

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The combined effect of viscous heating and convective cooling on Couette flow and heat transfer characteristics of water base nanofluids containing Copper Oxide (CuO) and Alumina (Al2O3) as nanoparticles is investigated. It is assumed that the nanofluid flows in a channel between two parallel plates with the channel’s upper plate accelerating and exchange heat with the ambient surrounding following the Newton’s law of cooling, while the lower plate is stationary and maintained at a constant temperature. Using appropriate similarity transformation, the governing Navier-Stokes and the energy equations are reduced to a set of nonlinear ordinary differential equations. These equations are solved analytically by regular perturbation method with series improvement technique and numerically by an efficient Runge-Kutta-Fehlberg integration technique coupled with shooting method. The effects of the governing parameters on the dimensionless velocity, temperature, skin friction, pressure drop and Nusselt number are presented graphically, and discussed quantitatively.
机译:研究了粘性加热和对流冷却对以氧化铜(CuO)和氧化铝(Al2O3)为纳米颗粒的水基纳米流体的库埃特流动和传热特性的综合影响。假定纳米流体在两个平行板之间的通道中流动,且通道的上板根据牛顿的冷却定律加速并与周围的环境进行热交换,而下板则保持静止并保持恒定的温度。使用适当的相似性变换,将控制的Navier-Stokes和能量方程简化为一组非线性常微分方程。这些方程通过常规的摄动方法和级数改进技术进行解析求解,并通过有效的龙格-库塔-费尔伯格积分技术与射击方法相结合进行数值求解。图形显示了控制参数对无量纲速度,温度,皮肤摩擦,压降和Nusselt数的影响,并进行了定量讨论。

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