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Numerical investigation of semi-confined turbulent slot jet impingement on a concave surface using an Al_2O_3-water nanofluid

机译:Al_2O_3-水纳米流体对凹面半约束湍流射流撞击的数值研究

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摘要

This paper presents and discusses results of a computational study of the flow field and heat transfer characteristics for a turbulent slot jet of an Al_2O_3-water nanofluid impinging normally on to a semi-circular concave surface. A wide range of various flow and geometrical parameters, including the nanoparticle volume fraction (Φ), jet Reynolds number (Re), and jet-to-target distance (h/B) have been considered. The results are presented in terms of the streamline patterns, local and average Nusselt numbers, stagnation Nusselt number, shear stress distribution, and pumping power. The results show a significant improvement of heat transfer rate due to the presence of the nanoparticles in water. Moreover, for ratios of h/B greater than three, the maximum average heat transfer rate from the concave surface occurs at h/B = 5. An increase in the jet Reynolds number and nanoparticle concentration leads to an improved cooling performance of jet impingement on the concave surface. However, the elevated viscosity of the nanofluid has the adverse effect of increasing the pumping power needed per unit of heat transferred.
机译:本文介绍并讨论了计算结果的计算研究结果,该研究结果是正常冲撞到半圆形凹面的Al_2O_3-水纳米流体的湍流狭缝射流的流场和传热特性的计算结果。已经考虑了各种不同的流动和几何参数,包括纳米粒子的体积分数(Φ),射流雷诺数(Re)和射流至目标的距离(h / B)。结果以流线型态,局部和平均Nusselt数,停滞Nusselt数,剪切应力分布和泵送功率表示。结果表明,由于水中存在纳米颗粒,传热速率有了显着改善。而且,当h / B的比值大于3时,从凹面传来的最大平均传热速率出现在h / B = 5处。射流雷诺数和纳米粒子浓度的增加会导致射流撞击在表面上的冷却性能提高。凹面。然而,纳米流体的粘度升高具有增加每单位热传递所需的泵送功率的不利影响。

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