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Forced Convective Condensation of R134A Vapor Inside a Vertical Microfin Tube

机译:垂直微翅片管内R134A蒸汽的强制对流冷凝

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In this study, condensation of pure refrigerant R134a vapor inside a vertical 18 degrees helical microfin tube was experimentally investigated. Tests were performed at saturation pressure of 5.7-5.9 bar with mass fluxes of 20-100 kg/m(2)s and heat fluxes of 1.7-5.3 kW/m(2). The effects of mass flux and the temperature difference between the refrigerant and tube wall (T) on the heat transfer performance were analyzed throughout experimental data. For experiments in which T is more than 2.5 degrees C, the average condensation Nusselt number showed a tendency to be independent from T. Heat transfer enhancement ratio was found to be 1.59-1.71, which is always higher than the heat transfer area enhancement factor (1.55). Fins always act as a turbulence promoter in the given experimental data range. Finally, the most widely used heat transfer coefficient correlations for condensation inside microfin tubes were analyzed through the experimental data. Best fit was obtained with Yu and Koyama's correlation with an absolute mean deviation of 17% and Kedzierski and Goncalves's correlation with an absolute mean deviation of 19%.
机译:在这项研究中,对纯制冷剂R134a蒸气在垂直的18度螺旋微翅管内的冷凝进行了实验研究。在5.7-5.9 bar的饱和压力下进行了测试,质量通量为20-100 kg / m(2)s,热通量为1.7-5.3 kW / m(2)。在整个实验数据中,分析了质量通量和制冷剂与管壁之间的温度差(T)对传热性能的影响。对于T高于2.5摄氏度的实验,平均冷凝Nusselt数显示出与T无关的趋势。发现传热增强比为1.59-1.71,始终高于传热面积增强因子( 1.55)。在给定的实验数据范围内,鳍片总是充当湍流促进剂。最后,通过实验数据分析了微翅片管内冷凝使用最广泛的传热系数相关性。 Yu和Koyama的相关性的绝对平均偏差为17%,Kedzierski和Goncalves的相关性的绝对平均偏差为19%,获得了最佳拟合。

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