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Analysis of heat transfer and flow resistance of twisted oval tube in low Reynolds number flow

机译:低雷诺数流下椭圆形扭曲管的传热和流阻分析

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Heat transfer enhancement of twisted oval tube is mainly concentrated in the high Reynolds number region. In the present study, the low Reynolds k-ε model is employed to investigate heat transfer and flow characteristics of water flow inside twisted oval tube (TOT) for Reynolds number in the range of 50-2000. Three dimensional numerical study is conducted to study the effects of the geometric parameters on the performance of twisted oval tube for a uniform wall temperature case. The flattening of 1.2,1.4,1.63,1.8 and 2.0, and the twisted pitch ratio of 0.17,0.25, 0.33 and 0.5. Local distributions of Nusselt number and friction factor are presented. The filed synergy principle is applied to reveal heat transfer enhancement mechanism. The results show that the heat transfer performance of twisted oval tube has been enhanced while having an increasing of pressure drop. One of the key findings of this study is that laminar to turbulent flow transition point was identified and located at Re = 500. The fluid is in laminar states with Reynolds number range of 50-250, while the fluid is in turbulent flow when the Reynolds comes to 500-2000. It is also found that the twisted oval tube performs well compared with the smooth tube due to the effect of secondary flow. The maximum enhancements factor PEC of 1.7 is obtained with flattening of 2.0, twisted pitch of 0.33 and Reynolds number of 350. Moreover, PEC of twisted oval tube increased with the increasing of flattening, but decreased with the increasing of twisted pitch ratio. These results would assist people in a comprehensive understanding of heat transfer performance of twisted oval tube in low Reynolds number flow, but also help in the design and development of compact heat exchanger.
机译:扭曲椭圆管的传热增强主要集中在高雷诺数区域。在本研究中,采用低雷诺k-ε模型研究了在50-2000范围内的雷诺数下,扭曲椭圆管(TOT)内水流的传热和流动特性。进行了三维数值研究,研究了在均匀壁温情况下几何参数对扭曲椭圆管性能的影响。扁平化为1.2、1.4、1.63、1.8和2.0,扭曲螺距比为0.17、0.25、0.33和0.5。给出了努塞尔数和摩擦系数的局部分布。场协同原理被应用于揭示传热增强机理。结果表明,扭曲的椭圆管的传热性能得到提高,同时压降增大。这项研究的主要发现之一是,确定了层流到湍流的过渡点并位于Re =500。流体处于层流状态,雷诺数范围为50-250,而当流体处于湍流时,则为雷诺数达到500-2000。还发现由于二次流的作用,扭曲的椭圆形管与光滑管相比性能良好。扁平化为2.0,扭曲节距为0.33,雷诺数为350时,最大增强因子PEC为1.7。此外,扭曲椭圆管的PEC随着展平度的增加而增加,但随着扭曲节距比的增加而降低。这些结果将有助于人们全面了解低雷诺数流量下的扭曲椭圆管的传热性能,也有助于紧凑型热交换器的设计和开发。

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