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Vortex-Excited Transverse Surface Waves in an Array of Randomly Placed Circular Cylinders

机译:随机放置的圆形圆柱阵列中的涡激横向表面波

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The results of an experimental investigation on the generation of transverse surface waves inside an array of randomly placed circular glass cylinders are presented. The transverse waves are generated from the forces developed by periodic vortex shedding from the glass cylinders. A lock-on, or a coupling, can occur between the vortex-shedding frequency and the frequency of transverse water waves. In all the experimental runs, the amplitude of the periodic transverse waves initially increased with an increase in water depth but decreased rapidly after reaching a maximum value. The amplitude reached a maximum value at a critical value of the water depth. The maximum amplitude increased with an increase in cylinder diameter. For the lengths of all of the arrays, the maximum amplitude occurred at approximately one-fifth of the total length from the upstream edge of the array. The maximum amplitude across the array increased with increasing Reynolds number until a critical value of the Reynolds number is reached, for which surface waves form and the amplitude is at its maximum. This critical value of the Reynolds number and the range of flow velocity for which the surface waves exist are different for different cylinder diameters. A previous mathematical model developed for the prediction of amplitudes has been modified for random arrays, which agrees well with the present experimental data.
机译:给出了在随机放置的圆形玻璃圆柱体阵列内产生横向表面波的实验研究结果。横向波是由玻璃圆柱体周期性涡旋脱落所产生的力产生的。在涡流脱落频率和横向水波频率之间可能会发生锁定或耦合。在所有实验运行中,周期性横波的振幅最初都随着水深的增加而增加,但在达到最大值后迅速减小。在水深的临界值处,振幅达到最大值。最大振幅随着圆柱直径的增加而增加。对于所有阵列的长度,最大振幅出现在距离阵列上游边缘的总长度的大约五分之一处。阵列上的最大振幅随着雷诺数的增加而增加,直到达到雷诺数的临界值为止,为此形成了表面波,并且振幅达到最大值。雷诺数的这个临界值和存在表面波的流速范围对于不同的圆柱体直径是不同的。先前开发的用于预测振幅的数学模型已针对随机阵列进行了修改,这与当前的实验数据非常吻合。

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