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Propulsion Strategy Analysis of High-Speed Swordfish

机译:高速箭鱼推进策略分析

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Fish have appeared since Precambrian more than 500 million years ago. Yet, there are still much untamed areas for fish propulsion research. The swordfish has evolved a light thin/high crescent tail fin for pushing a large amount of water backward with a small velocity difference. Together with a streamlined forward-enlarged thin/high body and forward-biased dorsal fin enclosing sizable muscles as the power source, the swordfish can thus achieve unimaginably high propulsion efficiency and an awesome maximum speed of 130km/h as the speed champion at sea. This paper presents the innovative concepts of "kidnapped airfoils" and "circulating horsepower" using a vivid neat-digit model to illustrate the swordfish's superior swimming strategy. The body and tail work like two nimble deformable airfoils tightly linked to use their lift forces in a mutually beneficial manner. Moreover, they use sensitive rostrum/lateral-line sensors to detect upcoming/ambient water pressure and attain the best attack angle to capture the body lift power aided by the forward-biased dorsal fin to compensate for most of the water resistance power. This strategy can thus enhance the propulsion efficiency greatly to easily exceed an astonishing 500%. Meanwhile, this amazing synergy of force/beauty also solves the perplexity of dolphin's Gray paradox lasting for more than 70 years and gives revelations for panoramic fascinating future studies.
机译:自前寒武纪以来,已有五亿多年前出现了鱼类。但是,仍然有很多尚未开发的鱼类推进研究领域。箭鱼进化出了一种轻薄/高月牙形的尾鳍,可以以较小的速度差将大量水向后推动。再加上流线型的向前扩大的瘦/高身和包围着相当大的肌肉的向前偏置的背鳍作为动力源,箭鱼因此可以实现难以想象的高推进效率,并作为海上速度冠军,达到了惊人的130km / h的最大速度。本文通过生动的整位数模型展示了箭鱼的出色游泳策略,提出了“绑架翼型”和“循环马力”的创新概念。身体和尾巴就像两个灵活的可变形机翼一样紧密地连接在一起,以互利的方式利用它们的升力。此外,他们使用敏感的讲台/侧线传感器来检测即将到来的/周围的水压,并获得最佳的迎角,以捕获正向背鳍辅助的身体举升功率,以补偿大部分的抗水力。因此,该策略可以大大提高推进效率,轻松超过惊人的500%。同时,这种惊人的力量/美感的协同作用还解决了海豚长达70多年的格雷悖论的困惑,并为全景迷人的未来研究提供了启示。

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