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Heat transfer coefficient during condensation inside a minichannel multiport tube with R32 and R410A as working fluids

机译:在以R32和R410A为工作流体的微通道多端口管内冷凝期间的传热系数

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The use of microchannels and minichannels in a heat exchanger has increased in recent decades. They contribute to increasing efficiency and to reducing refrigerant charge and compactness of heat exchangers. The aim of this study is to experimentally determine the heat transfer coefficient in minichannel two-phase flow processes with the low global warming potential refrigerant R32 and to compare it with the values experimentally obtained for R410A and some of the correlations encountered in the existing literature. There are a few publications studying refrigerant R32 inside multiport minichannel tubes; this has low flammability and has been classified as A2L by ASHRAE. European air-conditioning manufacturers recommend its use instead of R410A as it has lower global warming potential (R32(GWP) = 675, R410A(GWP) = 2088). Other environmental improvements may also be considered: R32 is a monocomponent refrigerant, so recycling is easier than R410A; it is also safer according to NFPA 704 classification; and a breathing apparatus is required in the case of an accident with R410A. On the other hand, R410A flammability is lower than R32 because of the addition of R125. An installation for the study of condensation processes has been constructed at the Technical University of Cartagena, Spain. The more relevant results of heat transfer coefficient will be presented in this article. The analyzed data have been measured for R32 and R410A flowing through aluminum square multiport tubes with a hydraulic diameter of 1.16mm, then compared. The influence of saturation temperature (or pressure), flow velocity, and vapor quality in heat transfer coefficient and frictional pressure gradient has been studied. The values considered for these variables are saturation pressure corresponding to 30 degrees C, 35 degrees C, 40 degrees C, 45 degrees C, and 50 degrees C; flow velocities from 100 to 800kg/(sm(2)); and vapor quality from 0.05 to 0.9.
机译:近几十年来,在热交换器中使用微通道和微通道的情况有所增加。它们有助于提高效率并减少制冷剂充入量和热交换器的紧凑性。这项研究的目的是通过实验确定具有低全球变暖潜能的制冷剂R32在微通道两相流过程中的传热系数,并将其与R410A的实验值以及现有文献中遇到的一些相关性进行比较。有一些出版物研究多端口微型通道管内的制冷剂R32。易燃性低,被ASHRAE分类为A2L。欧洲空调制造商建议使用它而不是R410A,因为它具有较低的全球变暖潜能(R32(GWP)= 675,R410A(GWP)= 2088)。还可以考虑其他环境改善措施:R32是单组分制冷剂,因此回收利用比R410A容易。根据NFPA 704分类,它也更安全; R410A发生事故时需要使用呼吸器。另一方面,由于添加了R125,因此R410A的可燃性低于R32。西班牙卡塔赫纳工业大学已经建造了一个用于研究冷凝过程的设备。本文将介绍更相关的传热系数结果。测量了流经液压直径为1.16mm的方形铝制多端口管的R32和R410A的分析数据,然后进行了比较。研究了饱和温度(或压力),流速和蒸汽质量对传热系数和摩擦压力梯度的影响。考虑这些变量的值为饱和压力,分别对应于30摄氏度,35摄氏度,40摄氏度,45摄氏度和50摄氏度;流速从100到800kg /(sm(2));蒸气质量从0.05到0.9。

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