Smith Predictor Based ℋ∞ Control for Piezoelectric Nano Stages with Time Delays

Zhiming Zhang, P. Yan
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引用次数: 2

Abstract

Nano precision capacitive displacement sensors have been successfully employed to the servo control of piezoelectric nano stages. However the analog-to-digital (A/D) conversion of the ultra high precision signal results in major time delays for the nano control systems. Meanwhile, the behavior of the hysteresis of piezoactuators can be also approximated as a variable gain cascaded with a frequency varying time delay. The infinite dimensionality of the time delays in nano servo systems poses new challenges for the control of nano stages, where traditional control methods can not be applied directly. In this paper, a linear model with time delays and hysteresis approximation is discussed for piezoelectric nano stages, where the system parameters are further determined using an identification method by experimental data. Furthermore a Smith predictor based robust ℋ∞ controller is developed to achieve high performance and robust stability for the control of nano stages. Real time experiments with the proposed control design are conducted, where robustness against model uncertainties and accurate positioning performance are demonstrated, which outperforms the method without considering time delays.
基于Smith预测器的时滞压电纳米级的h∞控制
纳米精密电容式位移传感器已成功应用于压电纳米工作台的伺服控制中。然而,高精度信号的模数(A/D)转换导致纳米控制系统的主要时间延迟。同时,压电致动器的迟滞特性也可以近似为变增益级联的变频时滞。纳米伺服系统中时滞的无限维性对纳米级的控制提出了新的挑战,传统的控制方法无法直接应用于纳米级的控制。本文讨论了具有时滞和滞回近似的压电纳米级线性模型,并利用实验数据进一步确定了系统参数。在此基础上,提出了一种基于Smith预测器的鲁棒h∞控制器,实现了纳米级控制的高性能和鲁棒稳定性。采用该控制设计进行了实时实验,证明了该控制设计对模型不确定性的鲁棒性和精确的定位性能,优于不考虑时滞的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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