首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >HIGH-SPEED VISUALIZATION OF PHASE-CHANGE PROCESSES IN SILICON MICROCHANNELS WITH WATER AND HFE-7100 AS WORKING FLUIDS
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HIGH-SPEED VISUALIZATION OF PHASE-CHANGE PROCESSES IN SILICON MICROCHANNELS WITH WATER AND HFE-7100 AS WORKING FLUIDS

机译:用水和HFE-7100作为工作流体的水和HFE-7100中硅微通道中相变过程的高速可视化

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Pumped-loop liquid-cooled system involving phase-change (two-phase) is a promising technology for removing excess heat from high-density electronics. However, no consensus has been reached so far regarding the hydraulic and heat transfer characteristics of such two-phase (TP) micro flow passages with hydraulic diameters (D_h) on the order of several hundred micrometers or smaller. In a previous paper [Tong et al., ASME IMECE2007-42027], we reported flow boiling experiments for several microchannel (MC) cold plate devices with channel widths ranging from 61 to 340 μm (hydraulic diameters from 100 to 337 μm) and a micro-pin-fin array (μPFA) device. Two working fluids, deionized water and HFE-7100, were tested respectively. In this paper, we focus on the highspeed visualization study of the phase-change phenomena inside the MC cold plates. Features of the major TP flow patterns are discussed for each MC unit with varying sizes and with the two different working fluids. From direct visualization, we report the liquid thin film evaporation rate for the pulsating annular flow regions in MCs. The observed liquid film evaporation rate is much higher than previous predictions/assumptions from a steady-state annular flow picture as assumed by most theoretical investigations so far. The local transient heat flux is thus much higher than the average heat flux provided, especially for water and small hydraulic diameter MCs.
机译:涉及相变(两相)的泵送环液冷却系统是从高密度电子器件中去除过量热的有希望的技术。然而,到目前为止没有达成共识,关于这种两相(TP)微流动通道的液压和传热特性,液压直径(D_H)大约数百微米或更小。在先前的论文中[Tong等人,ASME IMECE2007-42027],我们报道了几种微通道(MC)冷板装置的流沸实验,通道宽度范围为61至340μm(液压直径为100至337μm)和a微引脚阵列(μPFA)设备。分别进行两种工作流体,去离子水和HFE-7100。在本文中,我们专注于MC冷板内相变现象的高速可视化研究。每个MC单元讨论主要TP流动模式的特征,其具有不同的尺寸和两个不同的工作流体。根据直接可视化,我们报告了MCS中脉动环形流量区域的液体薄膜蒸发速率。所观察到的液体膜蒸发速率远高于来自稳态环形流动图像的先前预测/假设,如今所假设的大多数理论研究所假设。因此,局部瞬态热通量远高于所提供的平均热通量,特别是用于水和小液压直径MCs。

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