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Modeling and Prediction of Two-Phase Microgap Channel Heat Transfer Characteristics

机译:两相微间隙通道传热特性的建模与预测

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A detailed analysis of microchannel/microgap heat transfer data for two-phase flow of refrigerants and dielectric liquids, gathered from the open literature and sorted by the Taitel and Dukler flow regime mapping methodology, is performed. Annular flow is found to be the dominant regime for this thermal transport configuration and to grow in importance with decreasing channel diameter. A characteristic M-shaped heat transfer coefficient variation with quality (or superficial velocity) for the flow of refrigerants and dielectric liquids in miniature channels is identified. The inflection points in this M-shaped curve are seen to equate approximately with flow regime transitions, including a first maximum at the transition from Bubble to Intermittent flow and a second maximum at moderate qualities in Annular flow, just before local dryout begins. The predictive accuracy of five classical two-phase heat transfer correlations for miniature channel flow is examined. Selecting the best fitting of the classical correlations for each of the flow regime categories is seen to yield predictive agreement with regime-sorted heat transfer coefficients that does not depart significantly from the agreement found in large pipes and channels.
机译:对制冷剂和介电液体两相流的微通道/微间隙传热数据进行了详细分析,该数据从公开文献中收集并通过Taitel和Dukler流动状态映射方法进行了分类。已发现环形流是这种热传输结构的主要形式,并随着通道直径的减小而越来越重要。对于制冷剂和介电液体在微型通道中的流动,确定了质量(或表观速度)的特征性M形传热系数变化。可以看到,在此M形曲线中的拐点大致等于流动状态的过渡,包括刚好在局部变干开始之前,从气泡向间歇流动过渡的第一最大值和环形水流中等质量的第二最大值。检验了五个经典的两相传热相关性对微型通道流量的预测精度。对于每种流态类别,选择经典相关性的最佳拟合可以产生具有按制度排序的传热系数的预测一致性,而该系数并不明显偏离大型管道和通道中的一致性。

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