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Hybrid Regressor and Approximation-Based Adaptive Control of Piezoelectric Flexible Beams

机译:压电柔性梁的混合回归和基于近似基于压电柔性梁的自适应控制

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One of the inherent limitations of adaptive regressor control is that the control system would degrade if the host system has unmodeled dynamics. Whereas, adaptive approximation control has the potential for controlling the host system in the presence of external/internal disturbances. Accordingly, this paper is concerned with a combination of both the regressor and approximation techniques for adaptive vibration control of smart beam. The idea behind this paper is to partition the equation of motion for multi-modes into two terms: one term for estimation of the unknown parameters associated with the known modeling using regressor technique, while the disturbance related to unmodeled dynamics can be approximated as a linear combination of orthogonal basis functions. The partial differential equation of the host beam is simplified to multi-modes ordinary differential equations using the assumed method. Then the control law and the updating adaptive laws for the uncertain parameters and the constant weighting coefficients are designed based on Lyapunov's stability theory. The modeling error is carefully considered and compensated using a robust sliding mode term. A simulation study is performed for a simply supported beam with piezoelectric patches to prove the validity of the proposed controller.
机译:自适应回归控制的固有局限之一是如果主机系统具有未刻度的动态,则控制系统会降低。然而,自适应近似控制具有在存在外部/内部干扰的情况下控制主机系统的可能性。因此,本文涉及用于智能光束的自适应振动控制的回归和近似技术的组合。本文背后的想法是将多模式的运动方程分为两个术语:一个术语用于使用回归技术估计与已知建模相关的未知参数,而与未拼件动态相关的干扰可以近似为线性正交基函数的组合。使用假定的方法简化了主梁的部分微分方程的偏微分方程。然后,基于Lyapunov的稳定性理论设计了控制法和不确定参数的更新自适应定律和恒定加权系数。使用强大的滑动模式术语仔细考虑和补偿建模误差。对具有压电贴片的简单支撑光束进行仿真研究,以证明所提出的控制器的有效性。

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