基于扩展状态观测器的输入速率约束下压电驱动器的无采样数据自适应控制

Maryam Naghdi, I. Izadi
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引用次数: 1

摘要

本文采用采样数据无模型自适应控制(SMFAC)方法研究压电致动器的运动跟踪问题。该方案的基本架构是基于输入输出数据,采样周期是设计的一个组成部分。首先考虑具有Bouc-Wen迟滞模型的PEA,利用积分均值定理和离散欧拉近似得到采样数据非线性模型。然后,利用采样数据扩展状态观测器和采样数据参数估计技术,构造了受输入速率约束的采样数据控制规则;SESO用于估计未知的剩余非线性和外部干扰。通过理论分析证明了跟踪误差的收敛性。实验结果证实了该方案的良好性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sampled-Data Model-Free Adaptive Control of Piezoelectric Actuators with Input Rate Constraint Using Extended State Observer
This paper investigates the motion tracking problem for piezoelectric actuators (PEAs) using a sampled-data control method known as sampled-data model-free adaptive control (SMFAC). The fundamental architecture of the proposed scheme is based on input-output data, and the sampling period is an integral part of the design. PEA with the Bouc-Wen hysteresis model is first considered to obtain a sampled-data nonlinear model using the integral mean value theorem and the discrete-time Euler approximation. Then, a sampled-data control rule subject to input rate constraint is constructed by applying a sampled-data extended state observer (SESO) and a sampled-data parameter estimation technique. The SESO is used to estimate the unknown residual nonlinearity and external disturbances. The convergence of the tracking error is proven through theoretical analysis. Experimental results confirm the adequate performance of the proposed scheme.
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