首页> 外文会议>The 4th ASME/JSME Joint Fluids Engineering Conference Vol.2 Pt.B; Jul 6-10, 2003; Honolulu, Hawaii >TWO-PHASE FLOW THROUGH SQUARE AND CIRCULAR MICROCHANNELS- EFFECT OF CHANNEL GEOMETRY
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TWO-PHASE FLOW THROUGH SQUARE AND CIRCULAR MICROCHANNELS- EFFECT OF CHANNEL GEOMETRY

机译:两相流通过正方形和圆形微通道-通道几何形状的影响

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An adiabatic experiment was conducted to investigate the effect of channel geometry on gas-liquid two-phase flow characteristics in microchannels. A mixture of water and nitrogen gas was pumped through a 96 μm x 96 μm square microchannel and the flow pattern, void fraction and pressure drop data were obtained and compared with those previously obtained in a 100μm circular microchannel. The frictional pressure drop was determined from the measured total pressure drop, and the two-phase flow pattern and void fraction were determined from image analysis of the video recordings. In the square channel, 136 runs were performed over a range of 0.09 ≤j_(G,AVG)≤62 m/s for the average superficial gas velocity and 0.01 ≤j_L≤ 4 m/s for the superficial liquid velocity. The frictional pressure drop data showed that the calculations based on a separated-flow model were best at estimating the frictional pressure drop for both microchannels. No particular effect of the channel shape was found for the two-phase frictional pressure drop. The void fraction-to-voliunetric quality relationship was also found to be similar for both shapes of microchannels, exhibiting an exponential increase in void fraction with increasing volumetric quality. The empirical correlation that describes the void fraction-to-volumetric quality' relationship for the square microchannel was developed earlier from the measured data for the circular microchannel. Observations of the recorded images indicated the two-phase flow patterns to be primarily intermittent with liquid and gas slugs. The liquid film surrounding the gas core displayed a smooth or ring-like structure. The probability of each interfacial structure occurring was examined in detail to develop a novel flow pattern map consisting of four regions named slug-ring flow, ring-slug flow, multiple flow and semi-annular flow. Between the square and circular microchannels, the two-phase flow maps exhibited transition boundaries that were shifted depending on the channel shape. The region of ring-slug flow that appears in the circular microchannel collapsed in the square microchannel, possibly due to the suppression of the liquid-ring film in the corners of the square channel.
机译:进行了绝热实验以研究通道几何形状对微通道中气液两相流动特性的影响。将水和氮气的混合物泵送通过96μmx 96μm方形微通道,并获得流动模式,空隙率和压降数据,并将其与先前在100μm圆形微通道中获得的数据进行比较。摩擦压降由测得的总压降确定,两相流模式和空隙率由录像的图像分析确定。在方形通道中,平均表观气体速度在0.09≤j_(G,AVG)≤62m / s的范围内进行了136次运行,表层液体速度在0.01≤j_L≤4 m / s的范围内进行了136次运行。摩擦压降数据表明,基于分离流模型的计算最适合估算两个微通道的摩擦压降。对于两相摩擦压降,没有发现通道形状的特殊影响。还发现两种形状的微通道的空隙率与挥发性物质的质量关系相似,随着体积质量的增加,空隙率呈指数增长。从圆形微通道的测量数据可以更早地得出描述方形微通道的空隙率与体积质量的关系的经验相关性。对记录图像的观察表明,两相流型态主要与液态和气团间歇。气芯周围的液膜呈光滑或环状结构。详细检查了每个界面结构出现的可能性,以开发出一种新颖的流型图,该流型图由四个区域组成,这些区域分别称为“塞环流”,“环塞流”,“多流”和“半环流”。在方形和圆形微通道之间,两相流图显示出过渡边界,该过渡边界根据通道的形状而偏移。出现在圆形微通道中的环形塞流区域在方形微通道中塌陷,这可能是由于方形通道角落处的液环膜受到抑制所致。

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