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Thermal and hydraulic analysis of a brazed aluminum evaporator

机译:钎焊铝制蒸发器的热力和水力分析

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This paper presents an analytical/computer model to predict the performance of a brazed aluminum evaporator operating under dehumidifying conditions. The evaporator uses small hydraulic diameter, flat multi-channel tubes and louver fins. The in-tube refrigerant flow was divided into three regions including the two-phase, liquid deficient and superheat regions. For each region, correlations were selected from the open literature to calculate the local heat transfer and pressure drop. The effects of refrigerant pressure drop along tube and pressure losses at the tube entrance and exit were accounted for in the heat transfer calculations. The air-side fins were assumed to operate at the fully wet condition and the sensible heat transfer coefficient of the wet fins was assumed to be equal to that of the dry fins. The overall heat transfer coefficient was calculated using the enthalpy driving potential method. The total heat transfer rate and refrigerant pressure drop depend on the ratio of the number of tubes in the first and second passes. Parametric studies were done to illustrate selection of the preferred number of tubes per pass. The average refrigerant side heat transfer coefficient is sensitive to the dry-out vapor quality. However, the total heat transfer rate is relatively insensitive to the dry-out vapor quality. As the air inlet humidity increases, the latent and total heat transfer rates increase, but the sensible heat transfer rate decreases. The program was used to design an R-404A evaporator, for which a prototype was built and tested. The program over-predicted the evaporator capacity by 8%. The over-prediction is believed due to flow mal-distribution in the branch tubes.
机译:本文提出了一种分析/计算机模型来预测在除湿条件下运行的钎焊铝制蒸发器的性能。蒸发器使用较小的液压直径,扁平的多通道管和百叶窗散热片。管内制冷剂流分为三个区域,包括两相,液体不足和过热区域。对于每个区域,从开放文献中选择相关性以计算局部传热和压降。在传热计算中考虑了制冷剂沿管的压降以及管入口和出口处压力损失的影响。假定空气侧翅片在完全湿润的条件下工作,并且假定湿翅片的显热传递系数等于干翅片的显热传递系数。使用焓驱动电位法计算总传热系数。总传热率和制冷剂压降取决于第一道和第二道中的管数之比。进行了参数研究,以说明每次通过的首选管数的选择。平均制冷剂侧传热系数对变干的蒸气质量敏感。但是,总的传热速率对干燥的蒸汽质量相对不敏感。随着进气湿度的增加,潜热传递速率和总传热速率增加,但是显热传递速率降低。该程序用于设计R-404A蒸发器,并为此制造了原型并进行了测试。该程序高估了蒸发器容量8%。认为过度预测是由于分支管中的流量分布不均。

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