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一种用于研究鱼类游动的基于压力的力和扭矩预测技术。

A pressure-based force and torque prediction technique for the study of fish-like swimming.

作者信息

Lucas Kelsey N, Dabiri John O, Lauder George V

机构信息

Museum of Comparative Zoology, Harvard University, Cambridge, Massachusetts, United States of America.

Departments of Civil & Environmental Engineering and Mechanical Engineering, Stanford University, Stanford, California, United States of America.

出版信息

PLoS One. 2017 Dec 7;12(12):e0189225. doi: 10.1371/journal.pone.0189225. eCollection 2017.

Abstract

Many outstanding questions about the evolution and function of fish morphology are linked to swimming dynamics, and a detailed knowledge of time-varying forces and torques along the animal's body is a key component in answering many of these questions. Yet, quantifying these forces and torques experimentally represents a major challenge that to date prevents a full understanding of fish-like swimming. Here, we develop a method for obtaining these force and torque data non-invasively using standard 2D digital particle image velocimetry in conjunction with a pressure field algorithm. We use a mechanical flapping foil apparatus to model fish-like swimming and measure forces and torques directly with a load cell, and compare these measured values to those estimated simultaneously using our pressure-based approach. We demonstrate that, when out-of-plane flows are relatively small compared to the planar flow, and when pressure effects sufficiently dominate shear effects, this technique is able to accurately reproduce the shape, magnitude, and timing of locomotor forces and torques experienced by a fish-like swimmer. We conclude by exploring of the limits of this approach and its feasibility in the study of freely-swimming fishes.

摘要

许多关于鱼类形态演化和功能的重要问题都与游泳动力学相关,而详细了解沿动物身体随时间变化的力和扭矩是回答其中许多问题的关键要素。然而,通过实验量化这些力和扭矩是一项重大挑战,迄今为止阻碍了对鱼类游泳的全面理解。在此,我们开发了一种方法,利用标准的二维数字粒子图像测速技术结合压力场算法,以非侵入性方式获取这些力和扭矩数据。我们使用机械扑翼装置来模拟鱼类游泳,并通过称重传感器直接测量力和扭矩,然后将这些测量值与使用基于压力的方法同时估算的值进行比较。我们证明,当与平面流相比平面外流动相对较小时,且当压力效应充分主导剪切效应时,该技术能够准确再现类鱼游泳者所经历的运动力和扭矩的形状、大小和时间。我们通过探讨该方法的局限性及其在自由游动鱼类研究中的可行性来结束本文。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/583c/5720764/414757f8ab26/pone.0189225.g001.jpg

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