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Experimental investigations of heat transfer mechanisms of a pulsating heat pipe

机译:脉动热管传热机理的实验研究

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Experimental work was carried out to clarify the heat transfer mechanism of a pulsating heat pipe (PHP). A micro pulsating heat pipe (MPHP) with five turns was fabricated by engraving an interconnected micro-channel on a 1.1 mm thick transparent glass wafer. The engraved glass wafer and a 500 gm thick silicon wafer were anodically bonded to form a closed-loop MPHP. Ethanol was charged into the MPHP as the working fluid. The MPHP was vertically oriented with a bottom-heating mode. Using infrared (IR) thermometry, the distributions of temperature and heat flux were measured at the fluid-wall interface for the first time over the entire MPHP with high spatial and temporal resolution. High-speed flow visualization, which was synchronized to heat transfer measurements, was utilized to identify the local flow patterns corresponding to the local temperature and heat flux. The heat transfer at the fluid silicon interface in the channels could be divided into the two parts: sensible heat transfer and latent heat transfer, and quantitative analysis of the data clarified the contributions of sensible/latent heat transfer to overall heat transfer. The overall contribution of latent heat transfer was estimated to be between 66% and 74%. Latent heat transfer not only induces the oscillating flow but also contributes significantly to overall heat transfer, whereas sensible heat transfer is a byproduct of the oscillating flow.
机译:进行实验工作以阐明脉动热管(PHP)的传热机理。通过在1.1毫米厚的透明玻璃晶圆上雕刻互连的微通道,制造出具有五匝的微脉动热管(MPHP)。将雕刻的玻璃晶片和500 gm厚的硅晶片阳极键合以形成闭环MPHP。将乙醇作为工作流体装入MPHP。 MPHP采用底部加热模式垂直定向。使用红外(IR)测温法,首次在整个MPHP上以高空间和时间分辨率在流体-壁界面处测量了温度和热通量的分布。与传热测量同步的高速流动可视化用于识别与局部温度和热通量相对应的局部流动模式。通道中流体硅界面处的热传递可分为两部分:显热传递和潜热传递,数据的定量分析阐明了显热/潜热传递对整体热传递的贡献。潜热传递的总体贡献估计在66%到74%之间。潜热传递不仅会引起振荡流,而且还会显着促进整体传热,而显热传递是振荡流的副产品。

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