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首页> 外文期刊>Experiments in Fluids: Experimental Methods and Their Applications to Fluid Flow >STRUCTURE OF NEAR WALL TURBULENCE DOWNSTREAM OF A WALL MOUNTED PROTRUSION - AN INTERESTING REYNOLDS STRESS SUPPRESSION PHENOMENA
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STRUCTURE OF NEAR WALL TURBULENCE DOWNSTREAM OF A WALL MOUNTED PROTRUSION - AN INTERESTING REYNOLDS STRESS SUPPRESSION PHENOMENA

机译:壁装突出物近壁湍流下游的结构-一个有趣的雷诺应力抑制现象。

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A local suppression in the generation of near wall Reynolds stress is achieved by modifying the buffer region and sublayer (y(+) < 30) of a turbulent pipe flow with a 16.4 wall unit high wall mounted protrusion. Multi-component, multi-point, time resolved laser Doppler velocimetry measurements are made in the undisturbed and modified ARL/PSU glycerin tunnel pipe flow at a Reynolds number of approximately 10000. A downstream converging flow field is produced by the divergence of the approaching mean flow around the protrusion. A pair of counter-rotating vortices, approximate to 15 wall units in diameter with common flow down, are generated by the protrusion and also contribute to the wall directed flow convergence. The convergence region is 15 wall units high and more than 100 wall units long and appears to decouple the near wall region from the outer turbulent wall layer. Locally, turbulent velocity fluctuations in the form of Reynolds stress producing events, sweeps and ejections, are retarded within this region. This results in a reduction in near wall uv Reynolds stress and local wall shear. Interestingly, the counter-rotating vortices act to increase turbulent diffusion in a manner which is uncorrelated with Reynolds stress generation. [References: 27]
机译:通过修改带有16.4壁单元高壁安装突出部的湍流管流的缓冲区和子层(y(+)<30),可实现对近壁雷诺应力产生的局部抑制。多分量,多点,时间分辨的激光多普勒测速仪的测量是在雷诺数约为10000的未扰动和改进的ARL / PSU甘油隧道管流中进行的。在突起周围流动。突起产生一对直径大约为15个壁单元且共同向下流动的反向旋转涡流,它们也有助于壁定向的流收敛。会聚区域的高度为15个壁单元,而长度大于100个壁单元,并且似乎将近壁区域与外部湍流壁层分离。在此区域内,以雷诺应力产生事件,横扫和弹射形式出现的湍流速度波动在局部受到抑制。这导致近壁uv雷诺应力和局部壁剪的减小。有趣的是,反向旋转涡流以与雷诺应力产生不相关的方式增加湍流扩散。 [参考:27]

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