非牛顿液体在圆形障碍物多孔通道中流动的第二定律研究

IF 2.7 Q3 NANOSCIENCE & NANOTECHNOLOGY Journal of Nanofluids Pub Date : 2023-06-01 DOI:10.1166/jon.2023.2045
N. Ghoudi, F. Mebarek‐Oudina, M. Bouabid, R. Choudhari, M. Magherbi
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引用次数: 0

摘要

非牛顿流体的流动问题由于其在不同工程领域的不同要求,近年来引起了人们极大的兴趣,并成为一些工作的主题,特别是对非牛顿流体的传热问题,如润滑、热轧、冷却问题和减阻问题的兴趣。本文研究了含非牛顿幂律液体饱和的圆形障碍物多孔通道中的混合对流传热及其相关熵产。研究了幂律指数、雷诺数、瑞利数和达西数对熵产的影响。作为本工作的一个新颖之处,我们进行了热力学不可逆性作为通道倾角和幂律指数函数的优化研究。利用COMSOL软件对问题的控制方程进行了求解。结果表明,控制参数强烈影响熵的产生。当幂律指数较低、雷诺数较高时,热熵产生最大。在较高的幂律指数下,雷诺数的影响不显著。在雷诺数固定的情况下,功率指数(n)的增大导致热熵的减小。这种减小很小,在雷诺数(Re)较低时减小,随着Re的增大减小得越来越大。流线表明在圆形障碍物后存在两个再循环区,其存在取决于Re和幂律指数。结果表明,与倾角相关的最大变化是幂律指数= 0.4。结果还表明,在较低的达西数和较高的幂律指数下,修改的达西数对达西粘性不可逆性的内在影响变得明显,总熵产生急剧增加。
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Second Law Investigation in a Non-Newtonian Liquid Flow in a Porous Channel with Circular Obstacle
The problem of non-Newtonian fluid flow has taken considerable interest and has been the subject of several work in latest years due to its various requests in different fields of engineering, in particular the interest in the problems of heat transfer in non-Newtonian liquids, such as lubrication, hot rolling, cooling problem and drag reduction. Here, mixed convection heat transport and its related entropy production in a porous channel with circular obstacle saturated via non-Newtonian power law liquid has been scrutinized. The influences on entropy production of the power law index, the Reynolds number, the Rayleigh number and the Darcy number are investigated. Being a novelty of this work, an optimization study of the thermodynamic irreversibility as a function of the channel inclination angle and the power law index is undertaken. The governing equations of the problem are solved employing the COMSOL software. Outcomes illustrate that the governing parameters strongly affect the entropy production. The thermal entropy generation is maximal at low value of power law index and high value of Reynolds number. The effect of Reynolds number become insignificant at relatively high power law index. At fixed Reynolds number value, a rise in the power index (n) leads to a reduce in the thermal entropy. This decrease is tiny, at low value of Reynolds number (Re) and turn into increasingly considerable as Re rises. The streamlines show the existence of two recirculation zones just after the circular obstacle, whose existence depends on both Re and power law index. Results show that the greatest variation relating to the inclination angle is for power law index equal to 0.4. Results indicate also that, at low Darcy number and relatively high power law index, the intrinsic effect of the modified Darcy number on Darcy viscous irreversibility become pronounced giving a sharp increase in the total entropy production.
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来源期刊
Journal of Nanofluids
Journal of Nanofluids NANOSCIENCE & NANOTECHNOLOGY-
自引率
14.60%
发文量
89
期刊介绍: Journal of Nanofluids (JON) is an international multidisciplinary peer-reviewed journal covering a wide range of research topics in the field of nanofluids and fluid science. It is an ideal and unique reference source for scientists and engineers working in this important and emerging research field of science, engineering and technology. The journal publishes full research papers, review articles with author''s photo and short biography, and communications of important new findings encompassing the fundamental and applied research in all aspects of science and engineering of nanofluids and fluid science related developing technologies.
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