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Field and numerical assessment of turning pool hydraulics in a vertical slot fishway

机译:垂直槽鱼道转向池水力学的现场和数值评估

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Turning pools are common in flshways, they create a more compact design by enabling fishways to fold back on themselves. Despite this, little is known about the hydraulic characteristics of turning pools or how they are influenced by different design elements. This paper presents the results of a study on the hydraulics of turning pools in vertical slot fishways focusing on the Vianney-Legendre vertical slot fishway in Quebec, Canada, which is one of few fishways worldwide to successfully pass sturgeon (i.e., lake sturgeon, Aripenserfufvescens). Field velocity measurements taken in two pools and a computational fluid dynamics (CFD) model study were used to assess the turning pool hydraulics of seven design geometries. Parallel biological studies of sturgeon in the fishway revealed that turning pools were the location with the highest rate of failed passage, apparently associated with large vortices in the centre of the turning pools which serve to delay or inhibit passage. Interestingly, the velocity, and turbulence levels are comparable to results from regular pools in vertical slot fishways. The volumetric energy dissipation rate in turning pools is suitable for fish passage. Based on in silico modelling we revealed that the addition of a baffle wall extending from the inside centre wall of the pool reduced the size of the vortex and provided a resting area for ascending fish. Adding a baffle wall should be considered in turning pools with semi-circular or straight back walls. There is a need for research to evaluate exactly how fish respond to different turning pool designs but in the interim, the approach used here demonstrates the potential for using hydraulic studies to design turning pools in fishways that meet biological criteria and presumably increase passage efficiency.
机译:转向池在鱼道中很常见,它们通过使鱼道能够向后折叠来创建更紧凑的设计。尽管如此,人们对转池的水力特性或如何受到不同设计元素的影响知​​之甚少。本文以加拿大魁北克省的Vianney-Legendre垂直槽鱼道为研究对象,对垂直槽鱼道转向水池的水力进行了研究,该研究是全球成功通过st鱼的几条鱼道之一(即湖st鱼,Aripenserfufvescens )。在两个池中进行的场速度测量和计算流体动力学(CFD)模型研究用于评估七个设计几何形状的转向池水力学。鱼类way鱼的平行生物学研究表明,转向池是通过失败率最高的位置,显然与转向池中心的大涡流有关,这些涡流会延迟或抑制通过。有趣的是,速度和湍流水平可与垂直槽式鱼道中常规水塘的结果相媲美。转池中的能量耗散率适合鱼通过。根据计算机模拟,我们发现增加了一个从水池内部中心壁延伸的挡板壁,减小了涡流的大小,并为鱼类上升提供了休息区。在具有半圆形或直后壁的转向水池中,应考虑增加挡板壁。需要进行研究以准确评估鱼类对不同转向池设计的反应,但在此期间,此处使用的方法证明了使用水力研究设计满足生物学标准并可能提高通过效率的鱼道转向池的潜力。

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