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弯口厚唇鱼扑翼式水中游动的流体动力学:考虑鱼鳍变形的三维非定常计算

Fluid dynamics of flapping aquatic flight in the bird wrasse: three-dimensional unsteady computations with fin deformation.

作者信息

Ramamurti Ravi, Sandberg William C, Löhner Rainald, Walker Jeffrey A, Westneat Mark W

机构信息

Laboratory for Computational Physics and Fluid Dynamics, Naval Research Laboratory, Washington, DC 20375-5344, USA.

出版信息

J Exp Biol. 2002 Oct;205(Pt 19):2997-3008. doi: 10.1242/jeb.205.19.2997.

Abstract

Many fishes that swim with the paired pectoral fins use fin-stroke parameters that produce thrust force from lift in a mechanism of underwater flight. These locomotor mechanisms are of interest to behavioral biologists, biomechanics researchers and engineers. In the present study, we performed the first three-dimensional unsteady computations of fish swimming with oscillating and deforming fins. The objective of these computations was to investigate the fluid dynamics of force production associated with the flapping aquatic flight of the bird wrasse Gomphosus varius. For this computational work, we used the geometry of the wrasse and its pectoral fin, and previously measured fin kinematics, as the starting points for computational investigation of three-dimensional (3-D) unsteady fluid dynamics. We performed a 3-D steady computation and a complete set of 3-D quasisteady computations for a range of pectoral fin positions and surface velocities. An unstructured, grid-based, unsteady Navier-Stokes solver with automatic adaptive remeshing was then used to compute the unsteady flow about the wrasse through several complete cycles of pectoral fin oscillation. The shape deformation of the pectoral fin throughout the oscillation was taken from the experimental kinematics. The pressure distribution on the body of the bird wrasse and its pectoral fins was computed and integrated to give body and fin forces which were decomposed into lift and thrust. The velocity field variation on the surface of the wrasse body, on the pectoral fins and in the near-wake was computed throughout the swimming cycle. We compared our computational results for the steady, quasi-steady and unsteady cases with the experimental data on axial and vertical acceleration obtained from the pectoral fin kinematics experiments. These comparisons show that steady state computations are incapable of describing the fluid dynamics of flapping fins. Quasi-steady state computations, with correct incorporation of the experimental kinematics, are useful when determining trends in force production, but do not provide accurate estimates of the magnitudes of the forces produced. By contrast, unsteady computations about the deforming pectoral fins using experimentally measured fin kinematics were found to give excellent agreement, both in the time history of force production throughout the flapping strokes and in the magnitudes of the generated forces.

摘要

许多通过成对胸鳍游动的鱼类利用鳍的划水参数,在水下飞行机制中从升力产生推力。这些运动机制引起了行为生物学家、生物力学研究人员和工程师的兴趣。在本研究中,我们首次对鳍摆动和变形的鱼类游泳进行了三维非定常计算。这些计算的目的是研究与雀鲷科的弯口厚唇鱼(Gomphosus varius)扑翼式水生飞行相关的力产生的流体动力学。对于这项计算工作,我们使用了厚唇鱼及其胸鳍的几何形状以及先前测量的鳍运动学,作为三维(3-D)非定常流体动力学计算研究的起点。我们针对一系列胸鳍位置和表面速度进行了三维稳态计算和一组完整的三维准稳态计算。然后使用具有自动自适应重新网格化的基于网格的非结构化非定常纳维-斯托克斯求解器,通过胸鳍摆动的几个完整周期来计算厚唇鱼周围的非定常流动。整个摆动过程中胸鳍的形状变形取自实验运动学。计算并积分了弯口厚唇鱼身体及其胸鳍上的压力分布,以给出身体和鳍的力,这些力被分解为升力和推力。在整个游泳周期中计算了厚唇鱼身体表面、胸鳍上以及近尾流中的速度场变化。我们将稳态、准稳态和非稳态情况下的计算结果与从胸鳍运动学实验获得的轴向和垂直加速度的实验数据进行了比较。这些比较表明,稳态计算无法描述摆动鳍的流体动力学。在正确纳入实验运动学的情况下,准稳态计算在确定力产生的趋势时是有用的,但不能提供所产生力大小的准确估计。相比之下,使用实验测量的鳍运动学对变形胸鳍进行的非定常计算被发现,在整个扑翼行程中的力产生时间历程以及所产生力的大小方面都给出了极好的一致性。

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