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Enhanced hydrodynamic performance of flexible fins using macro fiber composite actuators

机译:使用宏纤维复合致动器增强了柔性鳍片的流体力学性能

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摘要

Recent studies on the role of body flexibility in propulsion suggest that fish have the ability to control the shape or modulate the stiffness of the fins for optimized performance. Inspired by nature's ability to modulate stiffness and shape for different operating conditions, this paper investigates active control of flapping foils for thrust tailoring using Macro Fiber Composites (MFCs). A coupled piezohydroelastic model has been developed to predict the propulsive performance of an actively deforming fin. The effect of important parameters such as oscillation frequency, flexibility of the fin, applied voltage and the phase difference between applied voltage and heaving on propulsive performance are studied and reported. It is observed that distributed actuation along fin produces maximum performance through proper selection of the phase difference between heaving and voltage. The optimal phase for lower values of fin stiffness is approximately 90° and it approaches 0° for higher stiffness values. Experiments performed to determine the effect of active control using MFCs validate the theoretical results.
机译:关于身体柔韧性在推进中的作用的最新研究表明,鱼具有控制鳍的形状或调节鳍的刚度以优化性能的能力。受自然界在不同操作条件下调节刚度和形状的能力启发,本文研究了使用宏纤维复合材料(MFCs)主动控制扑翼箔进行推力剪裁的方法。已经开发了耦合的压电流体弹性模型来预测主动变形鳍的推进性能。研究并报道了诸如振动频率,鳍片的柔韧性,外加电压以及外加电压和升沉之间的相位差等重要参数对推进性能的影响。可以观察到,通过适当选择升沉和电压之间的相位差,沿着鳍片进行的分布式致动可产生最佳性能。较低的翅片刚度值的最佳相位约为90°,对于较高的刚度值则接近0°。为确定使用MFC的主动控制效果而进行的实验验证了理论结果。

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