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A numerical investigation of controllably flexible hydrofoil in laminar flows

机译:层流中可控挠性水翼的数值研究

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Aquatic animals, such as fishes, whales, seals and penguins, are naturally born to be flexible and deformable, which promise their effective locomotion through water. They are able to produce hydrodynamic thrust by active control of their body configurations. That is, the aquatic animals could wiggle their flexible bodies at an appropriate frequency and amplitude suitable to the hydrodynamics surrounding them. However, the mechanism for the active controls has not been adequately understood yet and attracts current research. One obstacle which hinders such investigation is the difficulty in experimental measurements of the flows around the wiggling bodies, and thus numerical simulation is becoming an indispensable alternative. In the paper, an immersed boundary method is developed to simulate the NACA 65-10 hydrofoil. It is observed that a wiggling hydrofoil exhibits a higher thrust while a stationary hydrofoil offers little improvement.
机译:水生动物,例如鱼类,鲸鱼,海豹和企鹅,天生就具有柔韧性和可变形性,从而保证了它们在水中的有效运动。他们能够通过主动控制其身体形态来产生水动力推力。也就是说,水生动物可以以适合其周围水动力的适当频率和振幅摆动其柔性体。但是,主动控制的机制尚未得到足够的了解,并吸引了当前的研究。阻碍这种研究的一个障碍是难以对摆动体周围的流动进行实验测量,因此数值模拟已成为必不可少的选择。在本文中,开发了一种浸入边界方法来模拟NACA 65-10水翼。可以观察到,摇摆的水翼表现出较高的推力,而固定的水翼则几乎没有改善。

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