第二定律分析:非牛顿流体在波浪形微通道中的电驱动流动

Sumit Kumar Mehta, Prasenjeet Padhi, Somchai Wongwises, Pranab Kumar Mondal
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摘要

我们研究了波浪形微通道内非牛顿离子液体热流的能量产生评估,考虑了有限离子尺寸和外加电场引起的电渗动的影响。利用基于有限元方法的数值方法确定了相关的流场、电双层势场和温度场。目前的模型与现有的理论结果进行了验证。通过改变布林克曼数、热佩克莱特数、有限离子尺寸的立体因子、卡鲁数和无量纲振幅,探讨了波浪形微通道内的熵产生,包括粘性、热、焦耳和总熵产生。增加卡略数可使液体产生更高的剪切稀化行为,从而产生更高的总熵。相反,有限离子尺寸的增加会减少熵的产生。熵的产生随着波浪壁振幅的增加而减少。值得注意的是,与平面通道相比,波浪形微通道始终表现出较低的熵生成。本研究获得的启示与开发用于电子冷却的高效热交换器件息息相关。
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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Second law analysis: electrically actuated flow of non-Newtonian fluids in wavy microchannels

We examined the energy production assessment for heat flow of non-Newtonian ionic liquids within a wavy microchannel, considering the impact of finite ionic size and electroosmotic actuation induced by the applied electric field. A numerical method based on the finite element approach was utilized to determine the associated flow, electrical-double layer potential, and temperature fields. The current model was validated against existing theoretical results. Entropy production, including viscous, thermal, Joule, and total entropy generation within the wavy microchannel, was explored by varying the Brinkman number, thermal Peclet number, steric factor for finite ionic size, Carreau number, and dimensionless amplitude. Increasing the Carreau number resulted in higher shear-thinning behavior of the liquid, leading to higher total entropy generation. Conversely, an increase in finite ionic size reduced entropy generation. Entropy generation decreased with increasing amplitude of the wavy wall. Notably, compared to the plane channel, wavy microchannels consistently exhibited reduced entropy generation. The insights gained from this study are relevant to the development of efficient heat-exchanging devices for electronic cooling.

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