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首页> 外文期刊>International Journal of Heat and Mass Transfer >Buoyancy driven vortex flow and its stability in mixed convection of air through a blocked horizontal flat duct heated from below
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Buoyancy driven vortex flow and its stability in mixed convection of air through a blocked horizontal flat duct heated from below

机译:浮力驱动的涡流及其通过从下方加热的水平水道受阻的空气在空气对流中的稳定性

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Experimental flow visualization combined with transient temperature measurement are carried out here to explore the possible stabilization of the buoyancy drive vortex flow in mixed convection of air in a bottom heated horizontal flat duct by placing a rectangular solid block on the duct bottom. Two acrylic blocks having dimensions 40 x 20 x 5 mm~3 (block A) and 40 x 20 x 10 mm~3 (block B) are tested. The blocks are placed on the longitudinal centerline of the duct bottom at selected locations. How the location and orientation of the rectangular block affect the stability of the regular vortex flow is investigated in detail. Experiments are conducted for the Reynolds number varying from 3 to 30 and Rayleigh number from 3000 to 6000, covering a wide range of the buoyancy-to-inertia ratio. For longitudinal vortex flow, the presence of either block near the duct entry causes the onset points of the longitudinal rolls to move significantly upstream especially for the roll pair directly behind the block. Besides, the longitudinal vortex flow in the exit portion of the duct is destabilized by the block. The transverse vortex flow is found to be only slightly affected by the block when it is placed in the exit half of the duct. Significant deformation of the transverse rolls is noted as they pass over the block. However, they restore to their regular shape in a short distance. Substantial decay in the transient flow oscillation results in the region right behind the block. Elsewhere the flow oscillates at nearly the same frequency and amplitude as that in the unblocked duct. When the block is placed near the duct entry, stabilization of the vortex flow behind the block is more pronounced. This flow stabilization is more prominent for block B with its height being twice of block A. Placing the block with its long sides normal to the forced flow direction can also enhance the flow stabilization. For the mixed longitudinal and transverse vortex flow, placing the block near the duct inlet causes the transverse rolls to change to regular or deformed longitudinal rolls in the duct depending on the buoyancy-to-inertia ratio and orientation of the block. The flow stabilization by the block is substantial. Again the stabilization of the mixed vortex flow can be enhanced by increasing the block height and length and by placing the block with its long sides normal to the forced flow direction.
机译:在这里进行了实验流动可视化与瞬态温度测量的结合,以通过在管道底部放置矩形实心块来研究底部加热的水平扁平管道中空气混合对流中浮力驱动涡流的可能稳定性。测试了两个丙烯酸树脂块,其尺寸分别为40 x 20 x 5 mm〜3(块A)和40 x 20 x 10 mm〜3(块B)。这些块放置在选定位置的管道底部的纵向中心线上。详细研究了矩形块的位置和方向如何影响规则涡流的稳定性。进行了雷诺数从3到30的变化和瑞利数从3000到6000的变化的实验,涵盖了很大的浮力与惯性比。对于纵向涡流,在管道入口附近存在任何一个花纹块都会导致纵向轧辊的起始点明显向上游移动,尤其是对于直接在花纹块后面的轧辊对。此外,在管道的出口部分中的纵向涡流由于该块而不稳定。当将横向涡流放置在管道的出口半部时,发现该横向涡流仅受模块的轻微影响。当横向辊通过块体时,注意到明显的变形。但是,它们可以在短距离内恢复到常规形状。瞬态流动振荡中的大量衰减会导致块后面的区域。在其他地方,气流以与畅通管道中相同的频率和振幅振荡。当将块放置在导管入口附近时,在块后面的涡流的稳定化更加明显。这种流动稳定对于块B而言更为突出,其高度是块A的两倍。将块的长边垂直于强制流动方向放置也可以增强流动稳定性。对于混合的纵向涡流和横向涡流,将块放置在管道入口附近会导致横向滚动改变管道中的规则或变形的纵向卷,具体取决于块的浮力与惯性比和方向。块的流动稳定是重要的。同样,可以通过增加块的高度和长度以及通过将块的长边垂直于强制流动方向来增强混合涡流的稳定性。

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