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Dynamic modelling and active disturbance rejection controller design for a morphing wing mechanism

机译:变形机翼机构的动力学建模和主动抗扰控制器设计

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Dynamic modelling and control system design for an in-plane morphing wing structure, which is proposed by NextGen Aeronautics, Inc., are investigated in this paper. The dynamic model of the morphing wing is developed based on Lagrange method from the viewpoint of energy. The in-plane aerodynamic load acting on the leading edge is considered as an uncertain disturbance. The morphing wing is a complex nonlinear multi-input multi-output system with coupling and actuation redundancy. Therefore, control allocation, decoupling and disturbance rejection are required in the control system design. A control allocator is designed based on pseudo inverse method; two active disturbance rejection controllers, which consist of tracking differentiators, nonlinear state error feedback laws and extended state observers, are adopted for the decoupled systems. The correctness of the model is verified by ADAMS simulation. The control system simulation results compared with PID controller show the abilities of disturbance rejection and decoupling. The results indicate that, integrating Lagrange equation, pseudo inverse control allocation and active disturbance rejection control, is an effective way for modelling and control of complex mechanisms.
机译:本文研究了NextGen Aeronautics,Inc.提出的面内变形机翼结构的动态建模和控制系统设计。从能量的角度出发,基于拉格朗日方法建立了变形机翼的动力学模型。作用在前缘上的平面内空气动力载荷被认为是不确定的扰动。变形机翼是具有耦合和驱动冗余的复杂非线性多输入多输出系统。因此,在控制系统设计中需要控制分配,去耦和干扰抑制。基于伪逆方法设计了一种控制分配器。解耦系统采用两个主动干扰抑制控制器,分别由跟踪微分器,非线性状态误差反馈定律和扩展状态观测器组成。通过ADAMS仿真验证了模型的正确性。与PID控制器相比,控制系统仿真结果表明,该系统具有抑制干扰和解耦的能力。结果表明,将拉格朗日方程,伪逆控制分配和主动干扰抑制控制相结合,是复杂机构建模和控制的有效途径。

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