Stereo-PIV Measurements of Turbulent Swirling Flow Inside a Pipe

Ayesha Almheiri, L. Khezzar, M. Alshehhi, Saqib Salam, A. Goharzadeh
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Abstract

Stereo-PIV is used to map turbulent strongly swirling flow inside a pipe connected to a closed recirculating system with a transparent test section of 0.6 m in length and a pipe diameter of 0.041 m. The Perspex pipe was immersed inside a water trough to reduce the effects of refraction. The working fluid was water and the Reynolds number based on the bulk average velocity inside the pipe and pipe diameter was equal to 14,450. The turbulent flow proceeds in the downstream direction and interacts with a circular disk. The measurements include instantaneous velocity vector fields and radial profiles of the mean axial, radial and tangential components of the velocity in the regions between the swirler exit and circular disk and around this later. The results for mean axial velocity show a symmetric behavior with a minimum reverse flow velocity along the centerline. As the flow developed along the pipe’s length, the intensity of the reversed flow was reduced and the intensity of the swirl decays. The mean tangential velocity exhibits a Rankine-vortex distribution and reached its maximum around half of the pipe’s radius. As the flow approaches the disk, the flow reaches stagnation and a complex flow pattern of vortices is formed. The PIV results are contrasted with LDV measurements of mean axial and tangential velocity. Good agreement is shown over the mean velocity profiles.
管道内湍流旋流的立体piv测量
Stereo-PIV用于绘制与封闭循环系统相连的管道内的湍流强旋流,该管道的透明测试段长度为0.6 m,管径为0.041 m。将有机玻璃管浸入水槽中,以减少折射的影响。工作流体为水,基于管内体积平均流速和管径计算的雷诺数为14450。紊流沿下游方向进行,并与圆盘相互作用。测量包括瞬时速度矢量场和平均轴向、径向和切向分量的径向分布,在旋流器出口和圆盘之间以及后面的圆盘周围。平均轴向速度的计算结果与沿中心线的最小逆流速度一致。随着流动沿管道长度方向发展,反向流动强度减小,旋流强度衰减。平均切向速度呈朗肯涡分布,在管道半径的一半左右达到最大值。当气流接近圆盘时,气流达到停滞状态,形成复杂的涡流流型。PIV结果与LDV测量的平均轴向和切向速度进行了对比。在平均速度剖面上显示出良好的一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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