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Turbulent air–water flows in hydraulic structures: dynamic similarity and scale effects

机译:水力结构中紊乱的空气-水流动:动态相似性和尺度效应

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摘要

In hydraulic structures, free-surface aeration is commonly observed: i.e., the white waters. The air bubble entrainment may be localised (hydraulic jumps, plunging jets) or continuous along an interface (water jets, chutes). Despite recent advances, there are some basic concerns about the extrapolation of laboratory results to large size prototype structures. Herein the basic air bubble entrainment processes are reviewed and the relevant dynamic similarities are discussed. Traditionally, physical studies are conducted using a Froude similitude which implies drastically smaller laboratory Reynolds numbers than in the corresponding prototype flows. Basic dimensional analyses are developed for both singular and interfacial aeration processes. The results are discussed in the light of systematic investigations and they show that the notion of scale effects is closely linked with the selection of relevant characteristic air–water flow properties. Recent studies of local air–water flow properties highlight that turbulence levels, entrained bubble sizes and interfacial areas are improperly scaled based upon a Froude similitude even in large-size models operating with the so defined Reynolds numbers ρw×qw/μw up to 5 E+5. In laboratorymodels, the dimensionless turbulence levels, air–water interfacial areas and mass transfer rates are drastically underestimated.
机译:在水工结构中,通常观察到自由表面通气:即白水。气泡夹带可以是局部的(液压跳跃,喷射射流),也可以是沿界面连续的(水喷射,滑槽)。尽管有最近的进展,但是对于将实验室结果外推到大型原型结构仍存在一些基本问题。在此,回顾了基本的气泡夹带过程并讨论了相关的动态相似性。传统上,物理研究是使用Froude相似性进行的,这意味着与相应的原型流程相比,实验室雷诺数要小得多。基本尺寸分析针对奇异和界面曝气过程而开发。在系统研究的基础上对结果进行了讨论,结果表明,尺度效应的概念与相关的特征性空气-水流特性的选择紧密相关。对局部空气-水流动特性的最新研究表明,即使在使用如此定义的雷诺数ρw×qw /μw至5 E的大型模型中,湍流水平,夹带气泡尺寸和界面区域也无法根据Froude相似性进行适当缩放。 +5。在实验室模型中,严重低估了无因次湍流水平,空气-水界面面积和传质速率。

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