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Flow condensation in parallel micro-channels - Part 1: Experimental results and assessment of pressure drop correlations

机译:平行微通道中的冷凝水-第1部分:实验结果和压降相关性评估

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摘要

In this first part of a two-part study, experiments were performed to investigate condensation of FC-72 along parallel, square micro-channels with a hydraulic diameter of 1 mm and a length of 29.9 cm, which were formed in the top surface of a solid copper plate. The condensation was achieved by rejecting heat to a counter flow of water through channels brazed to the underside of the copper plate. The FC-72 entered the micro-channels slightly superheated, and operating conditions included FC-72 mass velocities of 68-367 kg/m~2 s, FC-72 saturation temperatures of 57.2-62.3 ℃, and water mass flow rates of 3-6 g/s. Using high-speed video imaging and photomicrographic techniques, five distinct flow regimes were identified: smooth-annular, wavy-annular, transition, slug, and bubbly, with the smooth-annular and wavy-annular regimes being most prevalent. A detailed pressure model is presented which includes all components of pressure drop across the micro-channel. Different sub-models for the frictional and accel-erational pressure gradients are examined using the homogenous equilibrium model (with different two-phase friction factor relations) as well as previous macro-channel and mini/micro-channel separated flow correlations. Unexpectedly, the homogenous flow model provided far more accurate predictions of pressure drop than the separated flow models. Among the separated flow models, better predictions were achieved with those for adiabatic and mini/micro-channels than those for flow boiling and macro-channels.
机译:在由两部分组成的研究的第一部分中,进行了实验以研究FC-72沿平行的方形微通道的冷凝,该通道在水的直径为1毫米,长度为29.9厘米的条件下形成于水面。坚固的铜板。冷凝是通过通过铜焊到铜板底面的通道将热量排到水的逆流中来实现的。 FC-72进入略微过热的微通道,运行条件​​包括FC-72的质量速度为68-367 kg / m〜2 s,FC-72的饱和温度为57.2-62.3℃,水的质量流速为3 -6克/秒。使用高速视频成像和显微照相技术,确定了五种不同的流动状态:光滑环形,波浪环形,过渡,弹状和气泡状,其中光滑环形和波浪环形状态最为普遍。提出了详细的压力模型,其中包括跨微通道的所有压降分量。使用同质平衡模型(具有不同的两相摩擦系数关系)以及先前的宏通道和微型/微通道分离流相关性,检查了摩擦和加速压力梯度的不同子模型。出乎意料的是,同质流模型比分离的流模型提供的压降预测要精确得多。在分离的流动模型中,绝热和微型/微通道的预测要比流动沸腾和宏观的预测更好。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2012年第4期|p.971-983|共13页
  • 作者单位

    Boiling and Two-Phase Flow Laboratory (BTPFL), and Purdue University International Electronic Cooling Alliance (PUIECA), Mechanical Engineering Building. 585 Purdue Mall. West Lafayette, IN 47907-2088, USA;

    Boiling and Two-Phase Flow Laboratory (BTPFL), and Purdue University International Electronic Cooling Alliance (PUIECA), Mechanical Engineering Building. 585 Purdue Mall. West Lafayette, IN 47907-2088, USA;

    Boiling and Two-Phase Flow Laboratory (BTPFL), and Purdue University International Electronic Cooling Alliance (PUIECA), Mechanical Engineering Building. 585 Purdue Mall. West Lafayette, IN 47907-2088, USA;

  • 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

    condensation; micro-channel; high-flux;

    机译:缩合;微通道高通量;
  • 入库时间 2022-08-18 00:19:31

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