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L-1 adaptive control of an aeroelastic system with unsteady aerodynamics and gust load

机译:L-1空气弹性系统的自适应控制,具有不稳定的空气动力学和阵风

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This paper presents the design of an L-1 adaptive control system for the stabilization of a two-dimensional aeroelastic system with structural nonlinearities and unsteady aerodynamics, using a single trailing-edge control surface. This model describes the plunge and pitch motion of a prototypical wing. It is assumed that its parameters are unknown and external disturbances are present. The unsteady aerodynamics are modeled with an approximation to Theodorsen's theory. The system exhibits limit cycle oscillations beyond a critical speed. Based on the L-1 adaptive control theory, a control law is developed for the trajectory control of the integral of the pitch angle. The control system includes a state predictor, a projection algorithm-based adaptation law designed based on the Lyapunov method, and a stabilizing control law. For the synthesis of the control law only the pitch angle and its derivative are measured. Simulation results show that in the closed-loop system, the aeroelastic vibrations are suppressed, despite parametric uncertainties and gust loads. Furthermore the performance limits of this L-1 adaptive law with respect to the freestream velocity and strength of gust load are examined.
机译:本文介绍了使用单个后缘控制表面的具有结构非线性和不稳定空气动力学的二维空气弹性系统的L-1自适应控制系统的设计。该模型描述了原型翼的插入和俯仰运动。假设其参数是未知的并且存在外部干扰。不稳定的空气动力学被建模,其近似于于Theodorsen的理论。该系统展示超出临界速度的极限周期振荡。基于L-1自适应控制理论,开发了一种控制定律,用于俯仰角的整体的轨迹控制。控制系统包括状态预测器,基于Lyapunov方法的基于投影算法的自适应法,以及稳定的控制法。对于对照法的合成,仅测量俯仰角及其衍生物。仿真结果表明,在闭环系统中,抑制了空气弹性振动,尽管参数化不确定性和阵风负荷。此外,研究了该L-1自适应法的性能限制相对于自由流速度和燃气荷载的强度。

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