矩形小翼涡发生器在太阳能空气加热器通道中的热增强

N. Depaiwa, T. Chompookham, P. Promvonge
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引用次数: 40

摘要

实验研究了带矩形小波涡发生器的恒热流道太阳能空气加热器湍流气流的强制对流换热和摩擦损失行为。考虑了矩形小波对的两种不同排列方式,分别指向流动的上游(PU)和下游(PD)。将攻角(α)分别为60°、45°和30°的10对wvg安装在试验通道入口壁上,在试验通道上形成纵向涡流。对长径比为AR = 10、高H = 30 mm、WVG高度b/H = 0.4、横向节距比P/H = 1的矩形通道空气加热器进行了测量。流量是基于通道进口水力直径的雷诺数,范围从5000到23000。实验结果表明,矩形WVG通道的换热率和摩擦损失明显高于光滑壁面通道。采用较大的攻角值,换热率和摩擦损失均高于较小的攻角值。在类似的操作条件下,PD-WVGs比PU具有更高的传热速率和摩擦损失。PD-WVGs的最大攻角(α = 60°)使Nusselt数和摩擦因数增加最多,而PU-WVGs的最小攻角(α = 30°)表现出最佳的热性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal enhancement in a solar air heater channel using rectangular winglet vortex generators
The forced convection heat transfer and friction loss behaviors for turbulent airflow through a constant heat flux channel solar air heater with rectangular winglet vortex generator (WVG) are experimentally investigated in this work. The rectangular winglet pairs are considered with two different arrangements by pointing upstream (PU) and pointing downstream (PD) of the flow. Ten pairs of the WVGs with various attack angles (α) of 60°, 45° and 30° are mounted on the test duct entrance wall to create longitudinal vortex flows over the tested channel. Measurements are carried out for the rectangular channel air heater of aspect ratio, AR = 10 and height, H = 30 mm with the WVG height, b/H = 0.4 and a transverse pitch ratio, P/H = 1. The flow rate is in terms of Reynolds numbers based on the inlet hydraulic diameter of the channel ranging from 5000 to 23,000. The experimental results show that the solar air heater channel with rectangular WVG provides significantly higher heat transfer rate and friction loss than the smooth wall channel. The use of larger attack angle value leads to higher heat transfer rate and friction loss than that of lower one. The PD-WVGs performs higher heat transfer rate and friction loss than the PU one for similar operating conditions. In comparison, the largest attack angle (α = 60°) of the PD-WVGs yields the highest increase in Nusselt number and friction factor while the lowest attack angle (α = 30°) of the PU-WVGs shows the best thermal performance.
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