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Hydrodynamic modeling and performance analysis of bio-inspired swimming

机译:生物启发游泳的流体动力学建模与性能分析

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We simulate thrust generation, lateral forces, and vorticity patterns in the wake of a swimming deformable fish-like body having different fin configurations. The simulation code is validated by comparing hydrodynamic loads and velocity profiles with published experimental and numerical results. The hydrodynamic performance of undulatory body is based on evaluation of generated loads versus required kinematics to achieve thrust-based swimming. The results show significant dependence of the thrust generation and vorticity pattern of the wake on the Strouhal number. Analysis of lateral oscillations of the tail reveals the existence of an optimal lateral oscillation amplitude that produces positive thrust. Simulations with a flapping caudal fin show significant improvement in thrust generation and transition from drag-based to thrust-based swimming at lower Strouhal numbers. Furthermore, controlling the flapping frequency of the caudal fin yields further enhancement in the hydrodynamic performance. This enhancement is associated with the transition from the aligned arrangement of alternating vortices to a deflected wake producing a momentum surfeit in the near wake region. Simulations with rigid pectoral fins on the generation of hydrodynamic loads show that a reduction in thrust production. This degradation in the propulsive performance is associated with the flow separation on the fish body.
机译:在具有不同翅片配置的游泳可变形的鱼类体之后,我们模拟推力产生,横向力和涡流模式。通过将流体动力载荷和速度分布与公开的实验和数值结果进行比较来验证模拟代码。波动体的流体动力学性能是基于对所产生的负荷与所需运动学进行评估,以实现基于推力的游泳。结果显示了斯特鲁姆数量唤醒的推力生成和涡旋模式的显着依赖性。尾部的横向振荡分析揭示了产生阳性推力的最佳横向振荡幅度的存在。带有拍打尾部的模拟显示出从基于拖曳到较低的斯特鲁姆数字的推力游泳的推力生成和过渡的显着改善。此外,控制尾鳍的拍打频率,进一步提高了流体动力学性能。这种增强与从交替涡流的对准布置的过渡相关联,以在靠近唤醒区域中产生动量上有效的偏转术语。用刚性胸鳍模拟在流体动力载荷产生时显示推力生产的降低。这种推进性能的降解与鱼体上的流动分离有关。

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