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Entropy Analysis in Double-Diffusive Convection in Nanofluids through Electro-Osmotically Induced Peristaltic Microchannel

机译:通过电渗透渗透蠕动微通道熵分析纳米流体双扩散对流

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摘要

A theoretical study is presented to examine entropy generation in double-diffusive convection in an Electro-osmotic flow (EOF) of nanofluids via a peristaltic microchannel. Buoyancy effects due to change in temperature, solute concentration and nanoparticle volume fraction are also considered. This study was performed under lubrication and Debye-Hückel linearization approximation. The governing equations are solved exactly. The effect of dominant hydrodynamic parameters (thermophoresis, Brownian motion, Soret and Dufour), Grashof numbers (thermal, concentration and nanoparticle) and electro-osmotic parameters on double-diffusive convective flow are discussed. Moreover, trapping, pumping, entropy generation number, Bejan number and heat transfer rate were also examined under the influence of pertinent parameters such as the thermophoresis parameter, the Brownian motion parameter, the Soret parameter, the Dufour parameter, the thermal Grashof number, the solutal Grashof number, the nanoparticle Grashof number, the electro-osmotic parameter and Helmholtz–Smoluchowski velocity. The electro-osmotic parameter powerfully affected the velocity profile. The magnitude of total entropy generation increased as the thermophoresis parameter and Brownian motion parameter increased. Soret and the Dufour parameter had a strong tendency to control the temperature profile and Bejan number. The findings of the present analysis can be used in clinical purposes such as cell therapy, drug delivery systems, pharmaco-dynamic pumps and particles filtration.
机译:提出了一种理论研究,以通过蠕动微通道检查纳米流体的电渗透流(EOF)中的双扩散对流中的熵产生。还考虑了温度变化,溶质浓度和纳米颗粒体积分数引起的浮力效应。本研究进行了润滑和德英-Hückel线性化近似进行。控制方程完全解决。讨论了主题流体动力学参数(热孔,褐色运动,梨丝和DUFOUR),GRASHOF编号(热,浓度和纳米粒子)和电渗透参数对双扩散对流流程的影响。此外,还在诸如热孔参数,布朗运动参数,SORET参数,DUFOUR参数,热格雷什编号的影响下进行捕获,泵送,熵生成数,BEJAN编号和传热速率。 Solutal Grashof数量,纳米粒子Grashof数,电渗透参数和Helmholtz-Smoluchowski速度。电渗透参数有力影响速度曲线。随着恒温参数和布朗运动参数的增加,总熵产生的幅度增加。 Soret和Dufour参数具有强烈控制温度曲线和Bejan号的倾向。本分析的发现可用于临床目的,例如细胞疗法,药物递送系统,药物动态泵和颗粒过滤。

著录项

  • 期刊名称 Entropy
  • 作者单位
  • 年(卷),期 2019(21),10
  • 年度 2019
  • 页码 986
  • 总页数 21
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:熵生成;双扩散对流;电渗透;纳米流体;生物微流体;精确的解决方案;

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