...
首页> 外文期刊>Journal of Fluid Mechanics >Computational analysis of vortex dynamics and performance enhancement due to body-fin andfin-fin interactions in fish-like locomotion
【24h】

Computational analysis of vortex dynamics and performance enhancement due to body-fin andfin-fin interactions in fish-like locomotion

机译:鱼类翅片翅片翅片翅片翅片翅片翅片 - 翅片 - 翅片 - 翅片 - 翅片 - 翅片 - 翅片 - 翅片翅片翅片翅片翅片翅片的计算分析

获取原文
获取原文并翻译 | 示例

摘要

Numerical simulations are used to investigate the hydrodynamic benefits of body-fin and fin-fin interactions in a fish model in carangiform swimming. The geometry and kinematics of the model are reconstructed in three-dimensions from high-speed videos of a live fish, Crevalle Jack (Caranx hippos), during steady swimming. The simulations employ an immersed-boundary-method-based incompressible Navier-Stokes flow solver that allows us to quantitatively characterize the propulsive performance of the fish median fins (the dorsal and the anal fins) and the caudal fin using three-dimensional full body simulations. This includes a detailed analysis of associated performance enhancement mechanisms and their connection to the vortex dynamics. Comparisons are made using three different models containing different combinations of the fish body and fins to provide insights into the force production. The results indicate that the fish produces high performance propulsion by utilizing complex interactions among the fins and the body. By connecting the vortex dynamics and surface force distribution, it is found that the leading-edge vortices produced by the caudal fin are associated with most of the thrust production in this fish model. These vortices could be strengthened by the vorticity capture from the vortices generated by the posterior body during undulatory motion. Meanwhile, the pressure difference between the two sides of posterior body resulting from the posterior body vortices (PBVs) helps with the alleviation of the body drag. The appearance of the median fins in the posterior region further strengthens the PBVs and caudal-fin wake capture mechanism. This work provides new physical insights into how body-fin and fin-fin interactions enhance thrust production in swimming fishes, and emphasizes that movements of both the body and fins contribute to overall swimming performance in fish locomotion.
机译:数值模拟用于研究碳状游泳中鱼模型体内翅片和鳍片交互的流体动力学益智。该模型的几何和运动学在稳定的游泳期间,距离活鱼的高速视频,克拉尔杰克(Caranx Hippos)的高速视频重建。仿真采用浸没边界方法的不可压缩Navier-Stokes流动求解器,使我们能够定量表征鱼中中间鳍(背部和肛门鳍)和使用三维全身模拟的尾鳍的推进性能。这包括对相关性能增强机制的详细分析及其与涡流动态的连接。使用三种不同的模型进行了比较,其中包含鱼体和鳍片的不同组合,以提供洞察力生产。结果表明,通过利用翅片和身体之间的复杂相互作用,鱼类产生高性能推进。通过连接涡流动力学和表面力分布,发现由尾鳍产生的前沿涡流与该鱼类模型中的大部分推力产生相关。这些涡流可以通过从后身体期间的后体产生的涡流捕获来加强这些涡流。同时,由后体涡流引起的后体两侧之间的压力差(PBV)有助于减轻体拖动。后部区域中的中值翅片的外观进一步增强了PBV和尾部尾爪捕获机制。这项工作提供了新的身体见解,进入身体鳍和鳍鳍相互作用如何增强游泳鱼类的推力生产,并强调身体和鳍片的运动有助于鱼类运动的整体游泳表现。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号