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Active vertical tail buffeting suppression based on macro fiber composites

机译:基于宏纤维复合材料的主动垂尾抖振抑制

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Aerodynamic buffet is unsteady airflow exerting forces onto a surface, which can lead to premature fatigue damage of aircraft vertical tail structures, especially for aircrafts with twin vertical tails at high angles of attack. In this work, Macro Fiber Composite (MFC), which can provide strain actuation, was used as the actuator for the buffet-induced vibration control, and the positioning of the MFC patches was led by the strain energy distribution on the vertical tail. Positive Position Feedback (PPF) control algorithm has been widely used for its robustness and simplicity in practice, and consequently it was developed to suppress the buffet responses of first bending and torsional mode of vertical tail. However, its performance is usually attenuated by the phase contributions from non-collocated sensor/actuator configuration and plants. The phase lag between the input and output signals of the control system was identified experimentally, and the phase compensation was considered in the PPF control algorithm. The simulation results of the amplitude frequency of the closed-loop system showed that the buffet response was alleviated notably around the concerned bandwidth. Then the wind tunnel experiment was conducted to verify the effectiveness of MFC actuators and compensated PPF, and the Root Mean Square (RMS) of the acceleration response was reduced 43.4%, 28.4% and 39.5%, respectively, under three different buffeting conditions.
机译:空气动力自助餐是不稳定的气流,在表面上施加力,这可能导致飞机垂直尾翼结构过早疲劳损坏,特别是对于在高攻角下具有双垂直尾翼的飞机。在这项工作中,可以提供应变驱动力的宏纤维复合材料(MFC)被用作用于自助感应振动控制的驱动器,而MFC贴片的定位是由垂直尾部上的应变能量分布来决定的。正位置反馈(PPF)控制算法由于其鲁棒性和简单性而在实践中得到了广泛应用,因此它被开发用于抑制垂直尾部的第一弯曲和扭转模式的自助响应。但是,其性能通常会因未并置的传感器/执行器配置和设备的相位贡献而减弱。实验确定了控制系统的输入和输出信号之间的相位滞后,并在PPF控制算法中考虑了相位补偿。闭环系统振幅频率的仿真结果表明,在相关带宽附近,自助响应得到了显着缓解。然后进行风洞实验以验证MFC执行器和补偿后的PPF的有效性,并且在三种不同的抖振条件下,加速度响应的均方根(RMS)分别降低了43.4%,28.4%和39.5%。

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