Entropy analysis of a non-Darcian mixed convective flow of Cu-Al2O3-based hybrid nanofluid with thermal dispersioneffect

Ashutosh Pandey, M. K. Mishra
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Abstract

Entropy measures the disorderness or randomness of the systems. It may affect the effectiveness and performance of the thermal systems. That is why entropy analysis is one of the trending research topic in modern era of society. The motive of this article is to present a comprehensive analysis of entropy generation and thermal dispersion effect on mixed convective flow of (Cu-Al2O3)/(H2O) based hybrid nanofluid along a plate submerged in a non-Darcy porous medium. The mathematical model describing the flow problem encompasses a system of partial differential equation, resulting from the single-phase flow model of the nanofluid combined with the Darcy-Forchheimer expression for porous medium flow. The dimensional system of partial differential equation is transformed into a non-dimensional nonlinear ordinary differential system through a similarity transformations and subsequently, the system is solved using the BVP4C module in MATLAB. The study analyzes the flow variables and entropy generation with respect to the parameters inherent in the problem. The findings suggests that, the increasing thermal dispersion effects enhances the Heat transfer rate of the hybrid nanofluid. Further, it is reported that the entropy generation in hybrid nanofluid is lower than the mono nanofluid which makes the hybrid nanofluid a better choice for entropy management in the thermal systems. The outcome of the research has practical implications in various real-life applications, such as crude oil production, oil flow filtration, electronic cooling equipment, etc.
具有热扩散效应的 Cu-Al2O3 基混合纳米流体非达西混合对流的熵分析
熵衡量系统的无序性或随机性。它可能会影响热系统的效率和性能。因此,熵分析是现代社会的趋势性研究课题之一。本文旨在全面分析熵的产生和热扩散效应对基于(Cu-Al2O3)/(H2O)混合纳米流体沿浸没在非达西多孔介质中的板的混合对流的影响。描述流动问题的数学模型包括一个偏微分方程系统,该系统由纳米流体的单相流模型与多孔介质流动的达西-福克海默表达式结合而成。通过相似变换,将该维度偏微分方程系统转化为非维度非线性常微分方程系统,然后使用 MATLAB 中的 BVP4C 模块求解该系统。研究分析了与问题固有参数相关的流动变量和熵的产生。研究结果表明,热扩散效应的增加提高了混合纳米流体的传热率。此外,据报告,混合纳米流体的熵产生低于单纳米流体,这使得混合纳米流体成为热力系统熵管理的更好选择。研究成果对各种实际应用具有实际意义,如原油生产、油流过滤、电子冷却设备等。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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