首页> 外文期刊>International Journal of Heat and Mass Transfer >Structure of mixed convective longitudinal vortex air flow driven by a heated circular plate embedded in the bottom of a horizontal flat duct
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Structure of mixed convective longitudinal vortex air flow driven by a heated circular plate embedded in the bottom of a horizontal flat duct

机译:由水平平板管道底部嵌入的加热圆盘驱动的混合对流纵向涡流的结构

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In this study experimental flow visualization combined with transient temperature measurement are conducted to investigate the structure of the buoyancy driven longitudinal vortex rolls in low Reynolds number mixed convective air flow through a horizontal flat duct with an isothermally heated circular disk embedded in the bottom plate of the duct for the Reynolds number ranging from 15.1 to 99.2 and Rayleigh number from 3506 to 29,493. How the circular geometry of the heated surface affects the longitudinal vortex flow characteristics is investigated in detail. The results indicate that the longitudinal vortex rolls (L-rolls) in the duct core are induced at more upstream locations than those near the duct sides, which is completely opposite to those induced in a duct with a uniformly heated bottom. Besides, the thermals driven by the circular heated surface are not evenly spaced in the spanwise direction and are slightly asymmetric. It is of interest to note that at a given Rayleigh number Ra the thermals are unstable at high Reynolds numbers, suggesting the existence of the inertia driven instability. Thus the L-rolls evolved from these thermals are also unstable with the presence of nonperiodic generation and disappearance of new L-rolls. But at slightly lower Re the thermals and L-rolls are steady and regular. The vortex flow becomes unstable and irregular for a further reduction in the Reynolds number, which obviously results from the buoyancy driven instability. The simultaneous presence of these two instability mechanisms explains the appearance of the reverse steady-unsteady transition in the vortex flow. Based on the present data, a flow regime map is given to delineate various L-roll patterns driven by the circular heated plate. In addition, the boundaries separating these patterns are empirically correlated. Empirical correlations for the onset points of the L-rolls are also provided.
机译:在这项研究中,进行了实验流动可视化与瞬态温度测量的结合,以研究低雷诺数混合对流气流通过水平扁平管道中的浮力驱动的纵向涡旋辊的结构,该管道中装有等温加热的圆盘,该圆盘嵌入在底板的底板中。雷诺数的范围为15.1至99.2,瑞利数的范围为3506至29,493。详细研究了加热表面的圆形几何形状如何影响纵向涡流特性。结果表明,在导管芯中的纵向涡旋辊(L辊)在上游位置比在导管侧附近的涡流诱导得更多,这与在底部加热均匀的导管中诱导的涡流完全相反。此外,由圆形加热表面驱动的热在翼展方向上不均匀地间隔开并且稍微不对称。有趣的是,在给定的瑞利数Ra下,热在高雷诺数下不稳定,这表明存在惯性驱动的不稳定性。因此,由于存在非周期性的生成和新L辊的消失,由这些热演化而来的L辊也不稳定。但是,在略低的Re时,热量和L型辊稳定且规则。涡流变得不稳定且不规则,从而进一步降低了雷诺数,这显然是由浮力驱动的不稳定性所致。这两种不稳定性机制的同时存在,解释了涡流中稳态-非稳态反向转变的出现。基于当前数据,给出了流动状态图以描绘由圆形加热板驱动的各种L型辊模式。另外,分隔这些图案的边界在经验上是相关的。还提供了L型轧辊起始点的经验相关性。

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