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避难的虹鳟鱼会选择性地利用串联圆柱体后方的水流。

Refuging rainbow trout selectively exploit flows behind tandem cylinders.

作者信息

Stewart William J, Tian Fang-Bao, Akanyeti Otar, Walker Christina J, Liao James C

机构信息

Department of Biology, Whitney Laboratory for Marine Bioscience, University of Florida, St Augustine, FL 32080, USA.

School of Engineering and Information Technology, University of New South Wales, Canberra, Australian Capital Territory 2610, Australia.

出版信息

J Exp Biol. 2016 Jul 15;219(Pt 14):2182-91. doi: 10.1242/jeb.140475.

Abstract

Fishes may exploit environmental vortices to save in the cost of locomotion. Previous work has investigated fish refuging behind a single cylinder in current, a behavior termed the Kármán gait. However, current-swept habitats often contain aggregations of physical objects, and it is unclear how the complex hydrodynamics shed from multiple structures affect refuging in fish. To begin to address this, we investigated how the flow fields produced by two D-shaped cylinders arranged in tandem affect the ability of rainbow trout (Oncorhynchus mykiss) to Kármán gait. We altered the spacing of the two cylinders from l/D of 0.7 to 2.7 (where l=downstream spacing of cylinders and D=cylinder diameter) and recorded the kinematics of trout swimming behind the cylinders with high-speed video at Re=10,000-55,000. Digital particle image velocimetry showed that increasing l/D decreased the strength of the vortex street by an average of 53% and decreased the frequency that vortices were shed by ∼20% for all speeds. Trout were able to Kármán gait behind all cylinder treatments despite these differences in the downstream wake; however, they Kármán gaited over twice as often behind closely spaced cylinders (l/D=0.7, 1.1, and 1.5). Computational fluid dynamics simulations show that when cylinders are widely spaced, the upstream cylinder generates a vortex street that interacts destructively with the downstream cylinder, producing weaker, more widely spaced and less-organized vortices that discourage Kármán gaiting. These findings are poised to help predict when fish may seek refuge in natural habitats based on the position and arrangement of stationary objects.

摘要

鱼类可能会利用环境中的涡流来降低运动成本。此前的研究探讨了鱼类在水流中躲在单个圆柱体后方的行为,这种行为被称为卡门步态。然而,水流冲刷的栖息地通常包含多个物理物体的聚集,尚不清楚多个结构产生的复杂流体动力学如何影响鱼类的躲避行为。为了开始解决这个问题,我们研究了两个串联排列的D形圆柱体产生的流场如何影响虹鳟(Oncorhynchus mykiss)采用卡门步态的能力。我们将两个圆柱体的间距从l/D为0.7改变到2.7(其中l为圆柱体的下游间距,D为圆柱体直径),并在Re = 10,000 - 55,000的条件下,用高速摄像机记录了鳟鱼在圆柱体后方游动的运动学特征。数字粒子图像测速显示,对于所有速度,增加l/D会使涡街强度平均降低53%,并使涡旋脱落频率降低约20%。尽管下游尾流存在这些差异,鳟鱼在所有圆柱体处理条件下都能够采用卡门步态;然而,它们在间距较小的圆柱体(l/D = 0.7、1.1和1.5)后方采用卡门步态的频率是其他情况的两倍多。计算流体动力学模拟表明,当圆柱体间距较大时,上游圆柱体产生的涡街与下游圆柱体发生破坏性相互作用,产生更弱、间距更大且组织性更差的涡旋,不利于卡门步态的形成。这些发现有助于根据静止物体的位置和排列来预测鱼类何时可能在自然栖息地中寻求庇护。

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