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Morphologic Optimal Design of Bionic Undulating Fin Based on Computational Fluid Dynamics

机译:基于计算流体动力学的仿生波动鳍形态优化设计

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摘要

Biomimetic design takes principles from nature to employ in engineering problems. Such designs are hoped to be quiet, efficient, robust, and versatile, having taken advantage of optimization via natural selection. In our initial work, an undulating robotic fin actuated by Shape Memory Alloy (SMA) is developed, the design of which is inspired by the pectoral fin of stingray. The robotic fin has nine individually actuated SMA fin rays which are linked by a thin latex sheet. This remarkable robotic fin moves by oscillating its SMA actuators out of phase and thereby passing a travelling, propulsive wave along the fins length from anterior to posterior part. A Computational Fluid Dynamics (CFD) based comparison of optimal thrust and efficiency generation among four typical fin undulating swimming models with different amplitude envelopes have been discussed in detail. Here, we seek to complement those studies by considering the influence of fin morphologic. We first review the biological background of ray-like swimming of Batoid Fishes. Then give a brief introduction on initial related work including: design of our mechanical fin and CFD work. Subsequently, we focus on morphologic optimal design of our developed bionic undulating fin by taking the advantages of three-dimensional CFD method. This robotic fin has potential application as a propulsor for future underwater vehicles, in addition to being a valuable scientific instrument in understanding the swimming mechanics of the stingray and similar fish.
机译:仿生设计采用自然界中的原理来解决工程问题。希望通过自然选择进行优化,从而使此类设计安静,高效,耐用且用途广泛。在我们的最初工作中,开发了一种由形状记忆合金(SMA)驱动的起伏式机器人鳍,其设计灵感来自于黄貂鱼的胸鳍。机械手鳍片有九条独立驱动的SMA鳍片射线,它们通过薄乳胶片连接在一起。这种出色的机器人鳍片通过使其SMA致动器异相振荡而移动,从而沿着鳍片的长度从前部到后部传递行进的推进波。详细讨论了基于计算流体动力学(CFD)的四种典型鳍状波状游泳模型之间最佳推力和效率生成的比较。在这里,我们试图通过考虑鳍形态的影响来补充这些研究。我们首先回顾一下类蝙蝠鱼的射线状游泳的生物学背景。然后简要介绍最初的相关工作,包括:机械鳍片的设计和CFD工作。随后,我们利用三维CFD方法的优势,重点研究了我们开发的仿生起伏鳍片的形态优化设计。除了作为了解黄貂鱼和类似鱼类的游泳机理的有价值的科学工具外,这种机器人鳍还可以用作未来水下航行器的推进器。

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