首页> 外文会议>ASME Fluids Engineering Division summer meeting >FLUID FLOW AND HEAT TRANSFER BEHAVIOR FOR TURBULENT FLOWS IN A TUBE WITH VORTEX GENERATOR PAIRS FOR AN EFFICIENT HEAT EXCHANGER
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FLUID FLOW AND HEAT TRANSFER BEHAVIOR FOR TURBULENT FLOWS IN A TUBE WITH VORTEX GENERATOR PAIRS FOR AN EFFICIENT HEAT EXCHANGER

机译:带有涡流发生器对的换热管中湍流的流动和传热特性,用于高效换热

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Various technologies have been developed to enhance flow mixing and heat transfer in order to develop an efficient compact heat exchanging devices. Vortex generators/turbulent promoters generate the vortices which reduce the boundary layer thickness and introduce the better mixing of the fluid to enhance the heat transfer. In this research experimental investigations have been carried out to study the effect of delta winglet vortex generator pairs on heat transfer and flow behavior. To generate longitudinal vortex flow, two pairs of the delta winglet vortex generators (DWVG) with the length of 10mm and winglet-pitch to tube-diameter ratio (PR=4.8) are mounted on the inner wall of a circular tube. The DWVG pairs with two different winglet-height to tube-diameter ratios (Blockage ratio, BR=0.1 and 0.2), three attack angles (a=10°, 20°, 30°) and three spacings between leading edges (S=10, 15 and 20mm) are studied. The experiments were conducted with DWVGs pairs for the air flow range of Reynolds numbers 5000-25000. The influence of the DWVGs on heat transfer and pressure drop was investigated in terms of the Nusselt number and friction factor. The experimental results indicate that DWVG pair in a tube results in a considerable enhancement in Nusselt number (Nu) with some pressure penalty. It is found that DWVG increases Nu up to 85% over the smooth tube. It is also observed that Nusselt number increases with Re, blockage ratio and attack angle. Friction factor decreases with Re but increases with blockage ratio, spacing and attack angle. And 30° DWVG pair with S=20mm, BR=0.2 gets the highest friction factor. The Highest thermal performance enhancement (TPE) was noticed for a =10°, S=20mm, BR=0.2 for turbulent flows. To obtain qualitative information on the flow behavior and vortex structures, flow was visualized by laser sheet using smoke as a tracer supplied at the entrance of the test section. The generation and development of longitudinal vortices influenced by DWVG pairs were clearly observed.
机译:为了开发有效的紧凑型热交换装置,已经开发了各种技术来增强流动混合和传热。涡流发生器/湍流促进剂产生的涡流减小了边界层的厚度,并引入了更好的流体混合,从而增强了热传递。在这项研究中,已经进行了实验研究以研究三角翼小涡流发生器对对热传递和流动行为的影响。为了产生纵向涡流,在圆管的内壁上安装了两对长度为10mm的小翼节距与管径比(PR = 4.8)的三角翼小涡流发生器(DWVG)。 DWVG对具有两种不同的小翼高度与管径比(阻塞比,BR = 0.1和0.2),三个迎角(a = 10°,20°,30°)和前缘之间的三个间距(S = 10) ,15和20mm)。使用DWVG对对进行雷诺数为5000-25000的空气流量范围的实验。根据努塞尔数和摩擦系数研究了DWVG对传热和压降的影响。实验结果表明,管中的DWVG对导致Nusselt数(Nu)的显着提高,并带有一定的压力损失。已发现,DWVG在光滑管上可将Nu含量提高至85%。还观察到,Nusselt数随Re,阻塞率和迎角的增加而增加。摩擦系数随Re减小,但随阻塞比,间距和迎角而增大。 S = 20mm,BR = 0.2的30°DWVG对获得最大的摩擦系数。湍流的最大热性能增强(TPE)值是= 10°,S = 20mm,BR = 0.2。为了获得有关流动行为和涡旋结构的定性信息,可以使用激光片将烟雾作为示踪剂在测试部分的入口处通过激光薄片可视化流动。清楚地观察到了受DWVG对影响的纵向涡旋的产生和发展。

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