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Two-phase heat transfer inside minichannels: experimental measurements of the condensation heat transfer coefficient

机译:内部分三相沟渠中的两相热传递:凝结传热系数的实验测量

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This paper presents a new measuring technique for the heat transfer coefficient during condensation inside a 1.4 mm hydraulic diameter multiport minichannel tube. It also reports experimental data taken during condensation of R134a. The tube wall temperature is directly measured, so as to obtain the saturation to wall temperature difference and thus the internal heat transfer coefficient in a direct form. The test section presented here is made of three counter-flow heat exchangers. It is realized with one 1.8 m long multiport tube and three separated jackets. The refrigerant condenses in the minichannels against the cooling water flowing in the jackets. The actual measuring sector is the third heat exchanger, considering the refrigerant flow direction. The other two heat exchangers are only used to achieve the desired value of vapor quality. The test section has been designed with the purpose of achieving both high water-side heat transfer coefficients and good mixing of the cooling water during tests. The final design is the result of the Finite Volume Method modeling and prototype testing. The tests showed that the measured heat transfer coefficient does not depend on the water side coefficient.
机译:本文提出了一种新的测量技术,用于在1.4mm液压大小百分之少烷基管内部冷凝下的传热系数测量技术。它还报告了在R134a的凝结期间拍摄的实验数据。直接测量管壁温度,以便获得壁温差的饱和度,从而获得直接形式的内部传热系数。这里提出的测试部分由三个反流式热交换器制成。它用一个1.8米长的多端口管和三个分离的夹套实现。制冷剂在迷你鳄鱼中融入夹克中的冷却水。考虑到制冷剂流动方向,实际测量扇区是第三热交换器。另外两个热交换器仅用于实现所需的蒸气质量值。测试部分已经设计,目的是在测试期间实现高水侧传热系数和冷却水的良好混合。最终设计是有限音量方法建模和原型测试的结果。测试表明,测量的传热系数不依赖于水侧系数。

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