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Influence of Shape, Number, and Position of Horizontal Minifins on Thermal-Hydraulic Performance of Minichannel Heat Sink Using Nanofluid

机译:水平微型散热片的形状,数量和位置对使用纳米流体的微型通道散热器的热工液压性能的影响

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摘要

In the first part of present study, an experimental setup with constant heat flux is used to investigate the thermal performance of the water inside a horizontal triangular pin fin channel. For the sake of validation of the computational fluid dynamics (CFD) study, a simulation is conducted according to the geometry and operating conditions of the experimental work. The numerical model consists of a study that has been established based on the geometrical parameters and operating conditions similar to the experimental work. The influence of four different cross sections of minifins (shaped as square, trapezoidal, triangular, and sinusoidal) and of number of triangular minifins (1,3,5,7, and 9) and their positions (in the regions of entrance, central, and terminal) on the heat transfer rate and pressure drop in a minifin minichannel heat sink are numerically investigated by a two-dimensional CFD model. The coolant is Cu-water nanofluid at a volumetric concentration of 2%. The results demonstrated that the sinusoidal minifin minichannel heat sink has the highest convective heat transfer coefficient in comparison with other shapes, while the trapezoidal minifin minichannel showed the highest thermal resistance. The highest pressure drop was observed for the triangular minifin inside minichannel. By increasing the number of fins, thermal resistance considerably decreased. Likewise, at the central and entrance positions, respectively, the highest Nusselt number and friction factor inside the minichannel was observed. This study can provide useful guidelines for the design of the cooling devices.
机译:在本研究的第一部分中,使用具有恒定热通量的实验装置来研究水平三角销翅片通道内水的热性能。为了验证计算流体动力学(CFD)研究,根据实验工作的几何形状和操作条件进行了模拟。数值模型包括一项基于类似于实验工作的几何参数和操作条件而建立的研究。微型鳍的四个不同横截面(正方形,梯形,三角形和正弦形)和三角形微型鳍的数量(1、3、5、7和9)及其位置(在入口,中央区域)的影响,以及末端)通过二维CFD模型数值研究了minifin微型通道散热器中的传热速率和压降。冷却剂是Cu-水纳米流体,体积浓度为2%。结果表明,与其他形状相比,正弦微翅片微通道散热器具有最高的对流传热系数,而梯形微翅片微通道散热器具有最高的热阻。对于微型通道内部的三角形微型翅片,观察到最高的压降。通过增加鳍片的数量,热阻大大降低。同样,在中央和入口位置,分别观察到微通道内的最高努塞尔数和摩擦系数。该研究可以为冷却装置的设计提供有用的指导。

著录项

  • 来源
    《Heat Transfer Engineering》 |2017年第12期|892-903|共12页
  • 作者单位

    Department of Chemical, Petroleum, and Gas Engineering, Semnan University, Semnan, Iran;

    Department of Chemical, Petroleum, and Gas Engineering, Semnan University, Semnan, Iran;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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