首页> 外文会议>International Conference on Microchannels and Minichannels; 20050613-15; Toronto(CA) >MEASUREMENT AND MODELING OF CONDENSATION HEAT TRANSFER COEFFICIENTS IN CIRCULAR MICROCHANNELS
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MEASUREMENT AND MODELING OF CONDENSATION HEAT TRANSFER COEFFICIENTS IN CIRCULAR MICROCHANNELS

机译:圆形微通道中凝结换热系数的测量与建模

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摘要

A model for predicting heat transfer during condensation of refrigerant R134a in horizontal microchannels is presented. The thermal amplification technique is used to measure condensation heat transfer coefficients accurately over small increments of refrigerant quality across the vapor-liquid dome. A combination of a high flow rate closed loop primary coolant and a low flow rate open loop secondary coolant ensures the accurate measurement of the small heat duties in these microchannels and the deduction of condensation heat transfer coefficients from measured UA values. Measurements were conducted for three circular microchannels (0.5 < D_h< 1.5 mm) over the mass flux range 150 < G < 750 kg/m~2-s. Results from previous work by the authors on condensation flow mechanisms in microchannel geometries were used to interpret the results based on the applicable flow regimes. The heat transfer model is based on the approach originally developed by Traviss et al. (1973) and Moser et al. (1998). The multiple-flow-regime model of Garimella et al. (2005) for predicting condensation pressure drops in microchannels is used to predict the pertinent interfacial shear stresses required in this heat transfer model. The resulting heat transfer model predicts 86% of the data within ±20%.
机译:提出了一种用于预测制冷剂R134a在水平微通道中冷凝过程中的热传递的模型。热放大技术用于在整个气液圆顶上制冷剂质量的小幅增量上准确测量冷凝传热系数。高流量的闭环主冷却剂和低流量的开环辅助冷却剂的结合可确保对这些微通道中较小的热负荷进行精确测量,并从测得的UA值中减去冷凝传热系数。在质量通量范围150

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