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Flow patterns and flow pattern maps for microchannels

机译:微通道的流型和流型图

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摘要

Dense packaging of electronic components generates very high heat fluxes and therefore results in challenges for proper thermal management of such components. Microchannel based evaporators with phase changing liquids are regarded as a promising solution for such high heat flux cooling applications. Due to confinement of flow and differences in the relative importance of governing phenomena, the two-phase flow and heat transfer characteristics of microchannels have been shown to be different from those of conventional sized channels. The fact that microchannel is an attractive cooling option but at the same time there is a clear lack of understanding of related hydrodynamic and thermal transport phenomena which provides an impetus for microchannel research. This paper presents the flow patterns and flow pattern maps obtained for an experimental study of R134a during flow boiling in a horizontal microchannel. The microchannel was a fused silica tube, the outer surface of which was coated with thin, transparent and electrically conductive layer of Indium-Tin-Oxide (ITO). The microchannel was 781 µm in internal diameter and 191 mm in heated length. Operating parameters during the experiments were: mass flux 100–400 kg/m2 s, heat flux 5–45 kW/m2, saturation temperature 25 and 30 °C. A High speed camera was used with a close up lens to capture the flow patterns evolved along the channel. Flow pattern maps are presented in terms of superficial gas and liquid velocity and in terms of Reynolds number and vapor quality plots. The results are compared with some flow pattern maps for conventional and micro scale channels available in literature.
机译:电子组件的密集包装会产生很高的热通量,因此会给这些组件的正确热管理带来挑战。具有这种相变液体的基于微通道的蒸发器被认为是用于这种高热通量冷却应用的有前途的解决方案。由于流量的限制以及控制现象相对重要性的差异,微通道的两相流动和传热特性已显示出与常规尺寸的通道不同。微通道是一种有吸引力的冷却选择,但与此同时,显然缺乏对相关的水动力和热传输现象的理解,这为微通道研究提供了动力。本文介绍了为研究R134a在水平微通道中进行沸腾过程的实验研究而获得的流型和流型图。该微通道是一个熔融石英管,其外表面涂有一层薄的,透明的,导电的铟锡氧化物(ITO)层。微通道的内径为781 µm,加热长度为191 mm。实验期间的操作参数为:质量通量100–400 kg / m 2 s,热通量5–45 kW / m 2 ,饱和温度25和30°C。高速摄影机与近摄镜头配合使用,以捕获沿通道形成的流动模式。流动模式图以表观气体和液体速度以及雷诺数和蒸气质量图的形式给出。将结果与文献中提供的常规和微型通道的某些流型图进行比较。

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