首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >Disturbance observer-based dynamic surface control design for a hypersonic vehicle with input constraints and uncertainty
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Disturbance observer-based dynamic surface control design for a hypersonic vehicle with input constraints and uncertainty

机译:具有输入约束和不确定性的高超声速飞行器基于扰动观察者的动态表面控制设计

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摘要

This article presents the flight control problem of a flexible air-breathing hypersonic vehicle under input constraint and aerodynamic uncertainty. First, a control-oriented model is derived and decomposed into velocity subsystem and altitude subsystem, in which compounded disturbances are included to consider aerodynamic uncertainty and the effect of the flexible modes. Second, nonlinear disturbance observer technique is employed to estimate the compounded disturbance, where the estimation error converges to a compact set if the observer design parameters are chosen appropriately. Then, based on disturbance observer, a robust controller and a dynamic surface controller are developed, respectively, for the velocity subsystem and the altitude subsystem. Third, novel robust first-order filters are designed to overcome the explosion of terms problem induced by backstepping method. Additional systems are constructed to tackle input constraints. By rigorously Lyapunov stability proof, the designed control strategy can assure that tracking error converges to an arbitrarily small neighborhood around zero. Finally, simulations are performed to show the effectiveness of the presented control strategy.
机译:本文提出了一种在输入约束和空气动力学不确定性条件下的柔性呼吸高超音速飞行器的飞行控制问题。首先,导出面向控制的模型并将其分解为速度子系统和高度子系统,其中包括复合干扰,以考虑空气动力学不确定性和柔性模式的影响。其次,采用非线性干扰观测器技术来估计复合干扰,如果适当选择观测器设计参数,则估计误差会收敛到紧集。然后,基于扰动观测器,分别为速度子系统和高度子系统开发了鲁棒控制器和动态表面控制器。第三,设计了新颖的鲁棒的一阶滤波器,以克服反步法引起的项爆炸问题。构建了其他系统来解决输入约束。通过严格的Lyapunov稳定性证明,设计的控制策略可以确保跟踪误差收敛到零附近的任意小邻域。最后,进行仿真以显示所提出的控制策略的有效性。

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