Efficient autonomous feedback controller parameter design considering robust stability for galvanometer scanner

IF 0.4 4区 工程技术 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
Eitaro Kuroda, Yoshihiro Maeda, Makoto Iwasaki
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引用次数: 0

Abstract

Robust stable feedback (FB) controller design against plant perturbation is crucial for industrial servo systems. However, since the controller parameter design generally requires expert skills and/or considerable labor by engineers, an autonomous controller design technology would be promising. This paper presents an efficient autonomous design method that optimizes the parameters of a cascade structure FB controller to achieve robust stabilization. Conventionally, robust stabilization is realized by imposing stability constraints on all the perturbed plant model sets in a parameter optimization problem. As a result, the design time would be much longer owing to the complicated optimization problem. The proposed method makes the parameter optimization considering robust stability more efficient than the conventional method, by simplifying the stability constraint definition and optimizing the specified circle radius for the stability constraint based on a bisection method. The effectiveness of the proposed method is evaluated through an example FB controller design for a laboratory galvanometer scanner.

考虑振镜扫描仪鲁棒稳定性的高效自主反馈控制器参数设计
鲁棒稳定反馈(FB)控制器的抗摄动设计对工业伺服系统至关重要。然而,由于控制器参数设计通常需要工程师的专业技能和/或大量劳动,因此自主控制器设计技术将是有前途的。本文提出了一种有效的自主设计方法,通过优化串级结构FB控制器的参数来实现鲁棒镇定。传统的鲁棒镇定是通过在参数优化问题中对所有被摄动的对象模型集施加稳定性约束来实现的。由于优化问题的复杂性,设计时间将大大延长。该方法简化了稳定性约束的定义,并基于对分法优化了稳定性约束的指定圆半径,使考虑鲁棒稳定性的参数优化比传统方法更有效。通过实验室振镜扫描仪的FB控制器设计实例,对所提方法的有效性进行了评价。
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来源期刊
Electrical Engineering in Japan
Electrical Engineering in Japan 工程技术-工程:电子与电气
CiteScore
0.80
自引率
0.00%
发文量
51
审稿时长
4-8 weeks
期刊介绍: Electrical Engineering in Japan (EEJ) is an official journal of the Institute of Electrical Engineers of Japan (IEEJ). This authoritative journal is a translation of the Transactions of the Institute of Electrical Engineers of Japan. It publishes 16 issues a year on original research findings in Electrical Engineering with special focus on the science, technology and applications of electric power, such as power generation, transmission and conversion, electric railways (including magnetic levitation devices), motors, switching, power economics.
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