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Optimization of Locations and Fiber Orientations of Piezocomposite Actuators on Flexible Wings for Aeroelastic Control

机译:气弹性控制柔性翼压电复合致动器的位置和纤维取向优化

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摘要

Smart piezoelectric fiber composite materials have the potential to improve the aerodynamic properties and aeroelastic responses of flexible wings. Aeroelastic control performance significantly depends on the configurations of such anisotropic actuators. In this paper, configuration optimization of piezocomposite actuators, including locations and lead zirconate titanate (PZT) fiber orientations, is investigated to enhance the aeroelastic control authority of flexible wings within a flight envelop. The effect of fiber orientation on the anisotropic actuation characteristics of the piezocomposite actuator is analyzed. A mathematical model of the piezocomposite-actuated flexible wings is established with the integration of the finite element model, actuation forces, and Theodorsen unsteady aerodynamic loads. An optimization approach is developed based on a controllability Gramian matrix and solved using a genetic algorithm (GA). The effects of fluid-structure interaction and flight speed on the optimal configurations of piezocomposite actuators are investigated and discussed. The results imply that both the best location and the PZT fiber orientation of the piezocomposite actuator are affected by fluid-structure interaction. The torsional modes receive greater controllability in aeroelastic control than the pure structural vibration control of flexible wings, and the optimal fiber orientations increase with flight speed.
机译:智能压电纤维复合材料有可能改善柔性翅膀的空气动力学性能和空气弹性响应。空气弹性控制性能显着取决于这种各向异性执行器的配置。本文研究了压电复合致动器的配置优化,包括位置和锆钛酸铅(PZT)纤维取向,以增强飞行中柔性翼的气动控制权威。分析了纤维取向对压电复合致动器的各向异性致动特性的影响。利用有限元模型,致动力和非稳定的空气动力学负载的集成建立了压电复合材料致动柔性翼的数学模型。基于可控性克鲁西亚矩阵开发了优化方法,并使用遗传算法(GA)解决。研究和讨论了流体结构相互作用和飞行速度对压电复合致动器的最佳配置的影响。结果意味着压电复合致动器的最佳位置和PZT纤维取向都受流体结构相互作用的影响。扭转模式接收到空气弹性控制中的可控性,而不是柔性翼的纯结构振动控制,最佳纤维取向随飞行速度而增加。

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