标题: | 水平矩形管道之圆型底板加热面藉由渐缩与倾斜管道对于浮力所驱动空气混合对流之回流延迟与涡旋流结构稳定之影响研究 Delayed Onset of Return Flow and Stabilization of Vortex Flow through Sidewall Converging and Duct Inclination in Mixed Convection of Gas over a Heated Circular Plate in a Horizontal Rectangular Duct |
作者: | 郭威伸 Wei-Shen Kuo 林清发 Tsing-Fa Lin 机械工程学系 |
关键字: | 对流;回流;纵向涡流;横向涡流;Convection;Return Flow;Longitudinal roll;Transverse roll |
公开日期: | 2005 |
摘要: | 本论文系以探讨在水平矩形管道圆型底板加热面管道内之空气混合对流,浮力驱动之流场变化。实验操作参数范围雷诺数介于5到50之间,雷利数则由7,200到21,000,针对渐缩与倾斜管道对于浮力所驱动空气混合对流之回流延迟与涡旋流结构稳定之影响研究。 第一部份将管道渐缩逐渐加速主流场速度,实验中将测试段分别渐缩5.7∘与11∘,探讨低雷诺数流场稳定性,实验主要利用流场可视化及温度量测方法探讨涡流的特性,实验结果并将与矩形管道作比较,针对在渐缩管道对纵向涡流(longitudinal roll)、横向涡流(transverse roll)、回流(Return Flow)的效应,实验结果显示在低的浮惯比(buoyancy-to-inertia ratio),与矩形管道相比较后发现渐缩管道会导致纵向涡流发生的位置较为延后,在高浮惯比,由于管道渐缩逐渐加速主流场速度,流场型态由不稳定涡流流场转变成规律纵向涡流流场,回流亦有效的延迟产生,并且减弱其强度与结构尺寸也缩小,温度量测亦指出管道渐缩能有效抑制与消除流场中不规则的震荡。 第二部份,针对空气于水平矩形管道圆型底板加热面的倾斜管道中,藉由流场观测及温度量测来探讨管道倾斜角度对空气混合对流涡流结构的影响。本实验的角度范围介于1∘与2∘之间以探讨稍微倾斜倾斜管道中回流与涡旋流结构的轴向发展过程,在稍微倾斜角的情况下,顺向混合对流(aiding mixed convection) 即浮力作用在流动方向,结果指出,由于倾斜时浮力助流的作用,使得流场规律且平顺,回流结构尺寸缩小与强度减弱,回流和涡旋流结构的起始点较水平延后发生;温度量测显示,流场中不规则的温度震荡亦有效的被压制与消除,浮力成为稳定流场之因素。 最后,根据渐缩与倾斜管道之实验所得结果分别提出一个与浮惯比有关用来判别回流存在与否的判别法则亦即回流发生参数之经验公式,并由流场组织图说明在倾斜管道内,不同流场型态之边界。 In this study an experimental flow visualization combined with temperature measurement are conducted to investigate how the sidewall converging and duct inclination affect the buoyancy induced return flow structure and stabilization of vortex flow in mixed convection of gas in a horizontal rectangular duct. The buoyancy driven secondary flow including the return flow and vortex flow is driven by a heated circular disk embedded in the bottom plate of the duct, simulating that in a horizontal longitudinal MOCVD reactor. Specifically, in the first part of the present study the sidewalls of the duct are inclined toward the duct core so that the gas flow in the duct is accelerated, causing the buoyancy-to-inertia ratio to decrease in the main flow direction. While in the second part of the study the duct is inclined upwards with its exit end above the entry end and the component of the buoyancy force normal to the heated plate is reduced. In the experiment the Reynolds and Rayleigh numbers of the flow at the duct inlet are respectively varied from 5 to 50 and from 7,200 to 21,000. In the first part of the study the duct aspect ratio is reduced from 20 at the inlet to 16 or 12 at the exit. The duct is slightly inclined from the horizontal in the second part. Particular attention is paid to delineating the spatial changes of the return flow structure with the sidewall converging and to explore how the duct inclination possibly suppresses and stabilizes the secondary flow. The results obtained in the study show a substantial delay in the onset of the return flow and the effective suppression of the buoyancy driven unstable longitudinal and transverse vortex flows by the sidewall converging and the duct inclination. Besides, the sidewall converging and the duct inclination can weaken the return flow more effectively at slightly higher Reynolds numbers. An empirical equation is provided to correlate the present data for the onset condition of the return flow in the duct. Some preliminary results from the second part of the study indicate that the slight inclination of the duct at 2° can significantly weaken the return flow. The reduction in the size of the return flow zone and the intensity of the return flow is prominent. Besides, the onsets of longitudinal and transverse vortex rolls are delayed substantially. |
URI: | http://140.113.39.130/cdrfb3/record/nctu/#GT008814801 http://hdl.handle.net/11536/58667 |
显示于类别: | Thesis |
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