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Active Control of F/A-18 Vertical Tail Buffeting using Piezoelectric Actuators

机译:使用压电执行器主动控制F / A-18垂直尾振颤

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摘要

Vertical tail buffeting is a serious multidisciplinary problem that limits the performance of twin-tail fighter aircraft. The buffet problem occurs at high angles of attack when the vortical flow breaks down ahead of the vertical tails resulting in unsteady and unbalanced pressure loads on the vertical tails. This paper describes a multidisciplinary computational investigation for buffet load alleviation of full F/A-18 aircraft using distributed piezoelectric actuators. The inboard and outboard surfaces of the vertical tail are equipped with piezoelectric actuators to control the buffet responses in the first bending and torsion modes. The electrodynamics of the smart structure are expressed with a three-dimensional finite element model. A single-input-single-output controller is designed to drive the active piezoelectric actuators. High-fidelity multidisciplinary analysis modules for the fluid dynamics, structure dynamics, electrodynamics of the piezoelectric actuators, fluid-structure interfacing, and grid motion are integrated into a multidisciplinary computing environment that controls the temporal synchronization of the analysis modules. Peak values of the power spectral density of tail tip acceleration are reduced by as much as 22% in the first bending mode and by as much as 82% in the first torsion mode. RMS values of tip acceleration are reduced by as much as 12%.
机译:垂直尾巴抖振是一个严重的多学科问题,限制了双尾战斗机的性能。当涡流在垂直尾部之前破裂时,在高攻角处会发生自助问题,从而导致垂直尾部上的压力负载不稳定且不平衡。本文描述了使用分布式压电致动器减轻F / A-18飞机的自助载荷的多学科计算研究。垂直尾部的内侧和外侧表面装有压电致动器,以控制第一弯曲和扭转模式下的自助响应。智能结构的电动力学用三维有限元模型表示。单输入单输出控制器设计用于驱动有源压电致动器。用于流体动力学,结构动力学,压电致动器的电动力学,流体结构接口和网格运动的高保真多学科分析模块已集成到一个多学科计算环境中,该环境控制分析模块的时间同步。尾尖加速度的功率谱密度的峰值在第一弯曲模式下降低了多达22%,在第一扭转模式下降低了多达82%。尖端加速度的RMS值降低多达12%。

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