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Theoretical analysis of heat transfer and friction factor for turbulent flow of nanofluids through pipes

机译:纳米流体通过管道的湍流传热和摩擦系数的理论分析

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摘要

A numerical model for determining the turbulent characteristics of fluid flow and heat transfer is presented, treating certain constants in the van Driest eddy diffusivity equation of momentum and heat as variables. The viscosity and thermal conductivity of nanofluids are estimated using regression equations. It was observed that the turbulent characteristics of nanofluids are different from those of water. The numerical results indicate a higher velocity of SiO2 nanofluid and lower eddy diffusivity compared to Cu under similar operating conditions. The nanofluid temperature gradient increases with concentration and decreases with temperature. However, the temperature gradient is significantly influenced by the particle density. Equations for estimating the coefficient and the Prandtl index in the eddy diffusivity equations of momentum and heat, respectively, are developed as a function of Reynolds number, concentration, and nanofluid properties. The Prandtl index value decreases with increasing concentration, reflecting the reduction in heat transfer coefficients observed at lower operating temperatures.
机译:建立了确定流体流动和传热湍流特性的数值模型,并将动量和热量的范德瑞斯特涡流扩散方程中的某些常数作为变量。使用回归方程估算纳米流体的粘度和热导率。观察到,纳米流体的湍流特性不同于水。数值结果表明,与Cu在相似的工作条件下相比,SiO2纳米流体的速度更高,涡流扩散率更低。纳米流体温度梯度随浓度增加而减小,随温度降低。但是,温度梯度受颗粒密度的影响很大。根据雷诺数,浓度和纳米流体性质,分别开发了用于估算动量和热的涡流扩散方程中的系数和普朗特指数的方程。普朗特指数值随着浓度的增加而降低,反映出在较低的工作温度下观察到的传热系数的降低。

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