首页> 外文期刊>International Journal of Heat and Mass Transfer >An experimental study on two-phase flow patterns and heat transfer characteristics during boiling of R134a flowing through a multi-microchannel heat sink
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An experimental study on two-phase flow patterns and heat transfer characteristics during boiling of R134a flowing through a multi-microchannel heat sink

机译:R134a流经多微通道散热器的沸腾过程中两相流型和传热特性的实验研究

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摘要

The present paper presents an experimental study of flow patterns and heat transfer characteristics of flow boiling of R134a in a multi-microchannel heat sink. The copper test section has 27 parallel rectangular channels with a depth of 470 μm, a width of 382 μm, a length of 40 mm, and a fin thickness of 416 μm. The experimental results are presented for saturation temperatures of 13, 18, and 23 ℃, and mass fluxes of 150,400, and 600 kg/m~2 s. The wall heat flux and inlet vapor quality values were between 3 and 127 kW/m~2, and 0.05 and 0.92, respectively. The effects of pertinent parameters on the heat and fluid flow characteristics such as saturation temperature, mass flux, heat flux, and inlet vapor quality are studied and discussed. The heat transfer coefficient at high saturation temperatures (i.e. 23 ℃) is higher than low saturation temperatures (i.e. 13 ℃) in the heat flux range of 40-120 kW/m~2. For high heat flux ranges, the heat transfer coefficient increases with increasing mass flux. The convective boiling heat transfer mechanism will play a major role in wavy and annular flow patterns. For wall heat fluxes higher than 80 kW/m~2, the existence of a partial dry-out phenomenon in the multi-microchannel leads to a decrease in heat transfer coefficient. The results unveil the significant effect of flow patterns on heat transfer characteristics. Based on the experimental data, a correlation is proposed to calculate the heat transfer coefficient for R134a flow in the multi-microchannel heat sink that is useful in electronic cooling applications.
机译:本文提出了在多微通道散热器中R134a的流型和流沸腾传热特性的实验研究。铜测试段具有27个平行的矩形通道,深度为470μm,宽度为382μm,长度为40 mm,翅片厚度为416μm。实验结果表明,饱和温度为13,18和23℃,质量通量为150,400和600 kg / m〜2 s。壁热通量和入口蒸汽质量值分别在3和127 kW / m〜2之间,以及0.05和0.92之间。研究并讨论了相关参数对热和流体流动特性(如饱和温度,质量通量,热通量和入口蒸汽质量)的影响。在40-120 kW / m〜2的热通量范围内,高饱和温度(即23℃)下的传热系数高于低饱和温度(即13℃)。对于高热通量范围,传热系数随质量通量的增加而增加。对流沸腾传热机制将在波浪形和环形流型中起主要作用。对于大于80 kW / m〜2的壁热通量,多微通道中存在局部变干现象会导致传热系数降低。结果揭示了流动方式对传热特性的重大影响。基于实验数据,提出了一种相关性,以计算在多微通道散热器中R134a流动的传热系数,该系数可用于电子冷却应用。

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  • 作者单位

    Fluid Mechanics, Thermal Engineering and Multiphase Flow Research Lab. (FUTURE), Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangmod, Bangkok 10140, Thailand;

    Fluid Mechanics, Thermal Engineering and Multiphase Flow Research Lab. (FUTURE), Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangmod, Bangkok 10140, Thailand;

    Fluid Mechanics, Thermal Engineering and Multiphase Flow Research Lab. (FUTURE), Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangmod, Bangkok 10140, Thailand;

    Department of Mechanical Engineering, Karunya University, Coimbatore 641 114, Tamil Nadu, India;

    Young Researchers and Elite Club, Mashhad Branch, Islamic Azad University, Mashhad, Iran;

    Heat and Thermodynamics Division, Department of Mechanical Engineering, Yildiz Technical University (YTU), Yildiz, Besiktas, Istanbul Turkey;

    Fluid Mechanics, Thermal Engineering and Multiphase Flow Research Lab. (FUTURE), Department of Mechanical Engineering, Faculty of Engineering, King Mongkut's University of Technology Thonburi, Bangmod, Bangkok 10140, Thailand;

  • 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

    Flow boiling; Heat transfer; R134a; Micro-channel heat sink;

    机译:流沸腾;传播热量;R134a;微通道散热器;

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