A MIMO controller design for damping, tracking, and cross coupling reduction of nanopositioners

S. Das, H. Pota, I. Petersen
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Abstract

This paper presents the design and implementation of a multi-input multi-output (MIMO) controller using a resonant controller, an integral controller, and a velocity feedback controller for damping, tracking and cross coupling reduction of a nanopositioner used in most of the scanning probe microscopes (SPMs). The MIMO dynamics identification of the system are done by using measured data and the design of the controller is based on to achieve large bandwidth and small cross coupling effects between the axes of the nanopositioner. The controller design presented in this paper is able to achieve a bandwidth close to the first resonance frequency of a nanopositioner which is five times greater than the bandwidth that can achieved by using a standard integral controller. Experimental images at scanning rates of 62.5 Hz and 125 Hz obtained by using the proposed controller and the built-in proportional-integral (PI) controller in a SPM are given to illustrate the effectiveness of the proposed controller.
一种MIMO控制器设计,用于阻尼、跟踪和减少纳米定位器的交叉耦合
本文介绍了一种多输入多输出(MIMO)控制器的设计和实现,该控制器采用谐振控制器、积分控制器和速度反馈控制器,用于阻尼、跟踪和减少大多数扫描探针显微镜(SPMs)中使用的纳米负极器的交叉耦合。利用实测数据对系统进行了MIMO动力学辨识,并设计了基于大带宽和小轴间交叉耦合效应的控制器。本文提出的控制器设计能够实现接近纳米逆变器第一共振频率的带宽,这是使用标准积分控制器所能实现的带宽的五倍。在扫描频率为62.5 Hz和125 Hz时,采用该控制器和SPM中内置的比例积分(PI)控制器分别获得了实验图像,验证了该控制器的有效性。
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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