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Combined effects of uniform heat flux boundary conditions and hydrodynamic slip on entropy generation in a microchannel

机译:均匀热通量边界条件和流体动力滑移对微通道熵产生的综合影响

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摘要

The effects of wall heat flux boundary conditions, wall to fluid thermal conductivity ratio and slip flow on heat transfer and entropy generation by considering the conjugate heat transfer problem in microchan-nels are studied, analytically. The heat transfer equations in the fluid and the finite thickness walls of the microchannel are solved analytically using uniform heat flux boundary conditions at the outer surfaces of the walls with appropriate continuity of temperature and heat flux at the fluid-wall interfaces. Exact analytic solutions for the velocity and temperature fields in the fluid and walls of microchannel are utilized to compute the entropy generation rate. The latter is integrated in the whole region of analysis so that the finite dimensions of the device are considered to get the global entropy generation rate. Finally, this quantity is discussed in detail and investigated considering combined effects of wall and hydrodynamic slip. Findings reveal that it is possible to find optimum values of heat flux across the walls of microchannel where the global entropy generation reaches a minimum. Special attention has been given to the effect of the wall heat flux on optimal values of other parameters. The optimum values of both the slip length and wall to fluid thermal conductivity ratio, where the entropy generation is minimum, decrease with the wall heat flux. Also, optimum values of Peclet number with minimal entropy are found for certain suitable combination of geometrical and physical parameters of the system.
机译:通过分析微通道中的共轭传热问题,研究了壁热通量边界条件,壁与流体的导热率以及滑流对传热和熵产生的影响。使用在壁的外表面上的均匀热通量边界条件以及在流体-壁界面处的温度和热通量的适当连续性,来解析地求解微通道的流体和有限厚度壁中的传热方程。利用微通道的流体和壁中的速度和温度场的精确解析解来计算熵的产生率。后者集成在整个分析区域中,因此可以考虑使用设备的有限尺寸来获得整体熵产生率。最后,对该量进行了详细讨论,并考虑了墙体和流体动力滑移的综合影响。研究结果表明,有可能找到整个全局熵产生达到最小值的微通道壁的热通量的最佳值。已特别注意壁热通量对其他参数的最佳值的影响。滑移长度和壁与流体的热导率之比的最佳值(其中熵产生最小)随壁热通量而减小。同样,对于系统的几何参数和物理参数的某些合适组合,发现了具有最小熵的佩克利数的最佳值。

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  • 作者单位

    Universidad de Ciencias y Artes de Chiapas, Libramiento Norte Poniente No. 1150, Col. Lajas Model, Tuxtla Gutierrez, Chiapas C.P. 29000, Mexico;

    Universidad de Ciencias y Artes de Chiapas, Libramiento Norte Poniente No. 1150, Col. Lajas Model, Tuxtla Gutierrez, Chiapas C.P. 29000, Mexico;

    Universidad de Ciencias y Artes de Chiapas, Libramiento Norte Poniente No. 1150, Col. Lajas Model, Tuxtla Gutierrez, Chiapas C.P. 29000, Mexico;

    Universidad de Ciencias y Artes de Chiapas, Libramiento Norte Poniente No. 1150, Col. Lajas Model, Tuxtla Gutierrez, Chiapas C.P. 29000, Mexico;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optimization; Entropy generation; Irreversibility; MicroChannel;

    机译:优化;熵产生;不可逆转;微通道;

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