Electromechanical actuators (EMAs) are increasingly used in aerospace servo actuation because of their compact structure, high power density, and convenient integration with electric flight-control systems. However, load-side aerodynamic torque, friction, parameter perturbations, and unmodeled transmission effects enter the EMA dynamics through a channel different from the motor-current input, which leads to a mismatched disturbance rejection problem. This paper develops a feedback-linearization-assisted observer-based interconnection and damping assignment passivity-based control (IDA-PBC) method for EMA trajectory tracking. A fourth-order input–output feedback-linearized normal-coordinate model is first derived, through which the original load-side mismatched disturbance is transformed into a matched term acting on the highest-order channel. An extended state observer is then constructed to estimate the transformed disturbance. Based on the observer output, a desired Hamiltonian function is generated from a Lyapunov equation, and the interconnection and damping matrices are explicitly assigned so that the closed-loop tracking-error dynamics admit a dissipative port-Hamiltonian representation. A composite Lyapunov analysis proves closed-loop exponential stability under the assumption of slowly varying disturbance. The resulting framework combines the disturbance-channel-reshaping capability of feedback linearization with the energy-shaping interpretation of IDA-PBC, providing a systematic controller design for high-precision EMA servo systems subject to load-side disturbances.
Electromechanical thrust-vector control systems are subject to friction, backlash, and configuration-dependent dynamics that are difficult to model explicitly, motivating controllers that adapt from operational data without requiring an identified plant. This paper proposes a data-driven, disturbance-observer-based con...
Connor Calme, Lundon Salley, L. F. Zapata-Rivera et al.· Applied Sciences· 0 citations
This paper proposes an adaptive robust integral sliding-mode control (ARISMC) strategy centered on dynamic decoupling to address control-performance degradation in electromagnetic actuators for reciprocating compressors caused by coil aging and spring fatigue. First, a nonlinear electromechanically coupled model incorp...
Xu Li, Yao Wang, De-Geng Zhao et al.· IEEE Access· 0 citations
This paper investigates the trajectory tracking control of a powered parafoil in the presence of wind disturbances and actuator saturation. An anti-windup active disturbance rejection control method is developed on the basis of an eight-degree-of-freedom nonlinear model. For controller design and implementation, the sy...
Zhengxiang Jin, Wangyang Huang, Jiaming Yu et al.· Transactions of the Institut...· 0 citations
To address issues such as nonlinear strong coupling, time-varying parameters, and external wind disturbances in fixed-wing unmanned aerial vehicles (UAVs) operating in complex flight environments, this study develops a composite attitude control method integrating L1 adaptive control with an extended state observer (ES...
Cheng Chen, Wen-Xi Tu, Yang Liu et al.· Actuators· 0 citations
During trajectory tracking, a Proportional-Integral-Derivative (PID) control system for DC motors may exhibit unacceptably large tracking errors when exposed to severe, sudden time-varying disturbance torques. To address this, a PIDA (Proportional-Integral-Derivative-Acceleration) controller is constructed by augmentin...
Reliable vibration control for active pneumatic suspension systems remains challenging due to inherent nonlinearities, parameter variations, and road-induced disturbances. This paper proposes a nonlinear disturbance observer (NDO)-based robust backstepping controller (NDORBC) scheme for a quarter-vehicle active pneumat...
Bin Wang, Zhaofeng Zhao, Ruihui Qiu et al.· Journal of Vibration and Con...· 0 citations
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