首页> 外文会议>2015 Proceedings of the ASME 13th international conference on nanochannels, microchannels, and minichannels >PRESSURE DROP FOR SINGLE-AND TWO-PHASE FLOWS THROUGH A RETURN BEND IN HORIZONTAL RECTANGULAR MICROCHANNEL AND MINICHANNEL
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PRESSURE DROP FOR SINGLE-AND TWO-PHASE FLOWS THROUGH A RETURN BEND IN HORIZONTAL RECTANGULAR MICROCHANNEL AND MINICHANNEL

机译:通过水平矩形微通道和微型通道中的回弯的单相和两相流压降

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In this paper, single-phase liquid and two-phase gas-liquid pressure drop data through 180° return bends have been obtained for horizontal rectangular micro-channel and mini-channel. To investigate the size effects of the test channels, the hydraulic diameters were 0.25 mm and 3 mm respectively as the micro-channel and the mini-channel. The curvature radii of the bends were 0.500 mm and 0.875 mm for the micro-channel, while 6 mm for the mini-channel. To know liquid properties effects, distilled water, surfactant and glycerin aqueous solutions, ethanol and HFE (hydrofiuoroether)-7200 were used as the test liquid, while nitrogen gas and air as the test gas. Pressure distributions upstream and downstream tangents of the bend were measured for the single-phase and the two-phase flows. From the pressure distribution data, the bend pressure loss was determined. By analyzing the present data, the bend loss coefficient for single-phase flow in both micro- and mini-channels could be correlated with Dean number. On the other side, the total bend pressure loss for two-phase flows were correlated by using an approach of Padilla et al., in which the total pressure loss is the sum of two pressure drop components, i.e., frictional pressure drop and singular pressure drop. The approach was found to be applicable to the present data for the micro- and the mini-channels if the frictional pressure drop was calculated by Lockhart-Martinelli method with Mishima & Hibiki's correlation and Kawahara et al.'s correlation and the singular pressure drop was calculated by a newly developed empirical correlation.
机译:本文获得了水平矩形微通道和微型通道通过180°回折的单相液体和两相气液压降数据。为了研究测试通道的尺寸效果,微型通道和微型通道的水力直径分别为0.25 mm和3 mm。对于微通道,弯头的曲率半径为0.500 mm和0.875 mm,而对于微通道,弯头的曲率半径为6 mm。为了了解液体性质的影响,将蒸馏水,表面活性剂和甘油水溶液,乙醇和HFE(氢氟醚)-7200用作测试液体,而将氮气和空气用作测试气体。对于单相和两相流,测量弯头上游和下游切线的压力分布。从压力分布数据确定弯曲压力损失。通过分析当前数据,可以将微通道和迷你通道中单相流动的弯曲损耗系数与迪安数相关。另一方面,通过使用Padilla等人的方法将两相流的总弯曲压力损失关联起来,其中总压力损失是两个压力下降分量的总和,即摩擦压力下降和奇异压力下降。如果摩擦力下降是通过Lockhart-Martinelli方法并根据Mishima&Hibiki的相关性以及Kawahara等人的相关性和奇异的压降来计算的,则该方法适用于微通道和微通道的当前数据。是通过新开发的经验相关性计算得出的。

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