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Two-phase mixed convection heat transfer and entropy generation analysis of a non-Newtonian nanofluid inside a cavity with internal rotating heater and cooler

机译:内旋转加热器和冷却器腔内非牛顿纳米流体的两相混合对流传热和熵产生分析

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摘要

In this study, mixed convection inside a square cavity filled with Cu-water nanofluid is simulated using the Eulerian two-phase mixture model. The base fluid is considered to be non-Newtonian and obeys from the power law. Two rotating cylinders are placed inside the heat exchanger and heat is transferred through the nanofluid from the hot cylinder to the cold one. In addition to the natural convection heat transfer inside the heat exchanger, rotation of the internal cylinders can provide forced convection heat transfer. The direction of rotation of cylinders can strengthen or weaken the natural convection effects in different regions, hence, four cases with various rotation directions for the cylinders are considered. The effects of changes in the value of imposed angular velocity (in terms of Richardson number), non-Newtonian power-law index, Rayleigh number and nanofluid volume fraction on both the heat transfer and entropy generation are discussed. The results have been illustrated that the shear-thinning or shear-thickening behavior of the non-Newtonian nanofluid can noticeably change the effect of forced convection on the heat transfer efficiency. Besides, regarding the values of Rayleigh number, Richardson number and non-Newtonian power-law index, the addition of nanoparticles into the non-Newtonian base fluid might adversely affect the heat transfer efficiency. In addition, to investigate irreversibilities, total entropy generation is discussed. It is indicated that shear-thinning nanofluids result in higher values of total entropy generation.
机译:在该研究中,使用欧拉两相混合模型模拟填充有Cu水纳米流体的方形腔内的混合对流。基础流体被认为是非牛顿和权力的奥比斯。将两个旋转圆柱体放置在热交换器内,并通过纳米流体从热圆筒转移到寒冷的热量。除了热交换器内部的自然对流传热之外,内圆柱的旋转可以提供强制对流热传递。汽缸的旋转方向可以加强或削弱不同区域中的自然对流效果,因此,考虑有四个具有用于汽缸的各种旋转方向的情况。讨论了施加角速度(根据Richardson号),非牛顿电力法指数,瑞利数和纳米流体体积分数的变化的影响是传热和熵生成的。已经说明了非牛顿纳米流体的剪切变薄或剪切增稠行为可以明显改变强制对流对传热效率的影响。此外,关于Rayleigh号码,Richardson号和非牛顿电力法指标的价值,将纳米颗粒添加到非牛顿基础液中可能对传热效率产生不利影响。此外,为了研究不可逆转,讨论了总熵生成。结果表明剪切薄纳米流体导致较高的总熵产生值。

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