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Volumetric imaging of shark tail hydrodynamics reveals a three-dimensional dual-ring vortex wake structure

机译:鲨鱼尾部流体动力学的体积成像揭示了三维双环涡流尾流结构

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摘要

Understanding how moving organisms generate locomotor forces is fundamental to the analysis of aerodynamic and hydrodynamic flow patterns that are generated during body and appendage oscillation. In the past, this has been accomplished using two-dimensional planar techniques that require reconstruction of three-dimensional flow patterns. We have applied a new, fully three-dimensional, volumetric imaging technique that allows instantaneous capture of wake flow patterns, to a classic problem in functional vertebrate biology: the function of the asymmetrical (heterocercal) tail of swimming sharks to capture the vorticity field within the volume swept by the tail. These data were used to test a previous three-dimensional reconstruction of the shark vortex wake estimated from two-dimensional flow analyses, and show that the volumetric approach reveals a different vortex wake not previously reconstructed from two-dimensional slices. The hydrodynamic wake consists of one set of dual-linked vortex rings produced per half tail beat. In addition, we use a simple passive shark-tail model under robotic control to show that the three-dimensional wake flows of the robotic tail differ from the active tail motion of a live shark, suggesting that active control of kinematics and tail stiffness plays a substantial role in the production of wake vortical patterns.
机译:了解运动中的生物如何产生运动力是分析在人体和附件振动过程中产生的空气动力和流体动力流动模式的基础。过去,这是通过使用二维平面技术来实现的,该技术需要重建三维流动模式。我们已经对功能脊椎动物生物学中的一个经典问题应用了一种新的全三维立体成像技术,该技术可以瞬时捕获尾流模式,这是功能性脊椎动物生物学中的一个经典问题:游泳鲨鱼的不对称(异颈)尾巴的功能可以捕获其中的涡度场尾巴扫过的音量。这些数据被用于测试先前通过二维流动分析估计的鲨鱼涡流尾流的三维重建,并且表明,体积方法揭示了先前未从二维切片重建的不同涡流尾流。流体动力尾流由每半个尾巴拍打产生的一组双链涡流环组成。此外,我们在机器人控制下使用了一个简单的被动鲨鱼尾模型,表明机器人尾部的三维尾流与活鲨的主动尾部运动有所不同,这表明运动学和尾部刚度的主动控制起着重要作用。在产生尾流涡旋模式中起着重要作用。

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