Aug 2026· International Conference on Advanced Mechatronic Systems· pp. 115-120· 0 citations· 18 references
Abstract
Piezoelectric ceramic actuators provide high-resolution motion but exhibit path-dependent hysteresis and mechanical dynamics that degrade trajectory tracking, particularly under time-varying commands. This paper develops a nonlinear model predictive control (NMPC) method based on a standard Bouc-Wen hysteresis model coupled with second-order actuator dynamics. The voltage rate is selected as the manipulated variable and the actual driving voltage is retained as a system state, allowing voltage-magnitude and voltage-rate constraints to be handled within a unified optimization problem without introducing a separate inverse hysteresis compensator. The objective penalizes displacement tracking error, output velocity, voltage rate, and voltage-rate variation to balance accuracy and control smoothness. Model parameters are initialized from experimental input-output data by least squares and subsequently refined within a limited range. Simulations under step, sinusoidal, and triangular references compare NMPC with proportional-integral-derivative (PID) and sliding mode control (SMC) under identical conditions. Both nonlinear controllers outperform PID. Relative to SMC, NMPC reduces RMSE by 81.03%, 84.06%, and 82.99% for the three trajectories, respectively, and achieves the lowest RMSE and MAE in every case. A computation-time assessment is also reported to clarify the present implementation scope.
Soft pneumatic actuators offer inherent compliance and safe interaction but remain difficult to model and control because of their highly nonlinear, distributed dynamics. We present a control-oriented data-driven modeling and control framework that decomposes actuator behavior into a nonlinear static equilibrium model...
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
Cable-driven manipulators have garnered increasing attention in robotics owing to their lightweight structure, flexible transmission mechanisms, and large operational workspace. However, the strong nonlinear dynamics, parameter coupling, and external disturbances inherent in cable-driven systems pose significant challe...
Jian-Hao Chai, Wei-Cai Quan, Xuan-Ming Tang et al.· Proceedings of the Instituti...· 0 citations
This study presents the dynamic modeling and control of a clamped-free beam system using Proportional–Integral–Derivative (PID) control strategies, with a focus on comparing the performance of a Standard PID controller and an optimally Tuned PID controller. Flexible beam structures are widely used in robotic and precis...
Richard Obinna Otagburuagu, Ogbu Mary Nnenna C., Udeh Chukwuma Callistus· International journal of re...· 0 citations
Piezoelectric actuators are the core driving components for active resonance and low-frequency vibration suppression of cantilever beams. However, the inherent hysteresis and creep nonlinearities of piezoelectric ceramics severely restrict positioning accuracy and vibration control performance, causing relative displac...
Bo Zhao, Henan Song, Si-Zhe Zhang et al.· Journal of Low Frequency Noi...· 0 citations
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
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