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Combined polymer and microbubble drag reduction on a large flat plate

机译:在大平板上结合聚合物和微泡减阻

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摘要

Drag-reduction experiments with combined injection of high-molecular-weight long-chained polymers and microbubbles were conducted on a 3.1 in long flat plate model in the 1.22 in diameter water tunnel at the Applied Research Laboratory of the Pennsylvania State University. Combined gas injection upstream of polymer injection produced, over a wide range of test conditions, higher levels of drag reduction than those obtained from the independent injection of polymer or microbubbles alone. These increased levels of drag reduction with combined injection were often greater than the product of the drag reductions obtained by the independent constituents, defined as synergy. We speculate that the synergy is a result of the gas-layer-induced extension of the polymer-alone initial diffusion zone in combination with the increased drag reduction by microbubbles. This increased length of the initial zone layer, consistent with high drag reduction, can significantly increase the persistence of the drag reduction and may improve the outlook for practical application.
机译:在宾夕法尼亚州立大学应用研究实验室的直径为1.22的水隧道中,在3.1英寸长的平板模型上进行了结合注入高分子量长链聚合物和微泡的减阻实验。在宽范围的测试条件下,与单独注射聚合物或单独使用微泡所获得的气体相比,在聚合物注射上游进行的组合气体注射产生了更高水平的减阻效果。联合注射增加的减阻水平通常大于独立成分获得的减阻乘积,定义为协同作用。我们推测,协同作用是由气体层诱导的仅聚合物初始扩散区的扩展与微气泡增加的阻力减少相结合的结果。与高减阻相一致的初始区域层长度的增加,可以显着增加减阻的持久性,并可以改善实际应用的前景。

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