High-bandwidth nanopositioning via active control of system resonance

被引:0
|
作者
Linlin Li
Sumeet S. Aphale
Limin Zhu
机构
[1] Shanghai Jiao Tong University,State Key Laboratory of Mechanical System and Vibration, School of Mechanical Engineering
[2] Zhejiang University,State Key Laboratory of Fluid Power and Mechatronic Systems
[3] University of Aberdeen,The Centre for Applied Dynamics Research, School of Engineering
[4] The Shanghai Key Laboratory of Networked Manufacturing and Enterprise Information,undefined
来源
关键词
nanopositioning stage; high-bandwidth; resonant mode control; tracking control; integral resonant control;
D O I
暂无
中图分类号
学科分类号
摘要
Typically, the achievable positioning bandwidth for piezo-actuated nanopositioners is severely limited by the first, lightly-damped resonance. To overcome this issue, a variety of open- and closed-loop control techniques that commonly combine damping and tracking actions, have been reported in literature. However, in almost all these cases, the achievable closed-loop bandwidth is still limited by the original open-loop resonant frequency of the respective positioning axis. Shifting this resonance to a higher frequency would undoubtedly result in a wider bandwidth. However, such a shift typically entails a major mechanical redesign of the nanopositioner. The integral resonant control (IRC) has been reported earlier to demonstrate the significant performance enhancement, robustness to parameter uncertainty, guaranteed stability and design flexibility it affords. To further exploit the IRC scheme’s capabilities, this paper presents a method of actively shifting the resonant frequency of a nanopositioner’s axis, thereby delivering a wider closed-loop positioning bandwidth when controlled with the IRC scheme. The IRC damping control is augmented with a standard integral tracking controller to improve positioning accuracy. And both damping and tracking control parameters are analytically optimized to result in a Butterworth Filter mimicking pole-placement—maximally flat passband response. Experiments are conducted on a nanopositioner’s axis with an open-loop resonance at 508 Hz. It is shown that by employing the active resonance shifting, the closed-loop positioning bandwidth is increased from 73 to 576 Hz. Consequently, the root-mean-square tracking errors for a 100 Hz triangular trajectory are reduced by 93%.
引用
收藏
页码:331 / 339
页数:8
相关论文
共 50 条
  • [1] High-bandwidth nanopositioning via active control of system resonance
    Li, Linlin
    Aphale, Sumeet S.
    Zhu, Limin
    FRONTIERS OF MECHANICAL ENGINEERING, 2021, 16 (02) : 331 - 339
  • [2] High-bandwidth nanopositioning via active control of system resonance
    Linlin LI
    Sumeet SAPHALE
    Limin ZHU
    Frontiers of Mechanical Engineering, 2021, (02) : 331 - 339
  • [3] High-Bandwidth Tracking Control of Piezoactuated Nanopositioning Stages via Active Modal Control
    Tao, Yidan
    Li, Linlin
    Li, Han-Xiong
    Zhu, LiMin
    IEEE TRANSACTIONS ON AUTOMATION SCIENCE AND ENGINEERING, 2022, 19 (04) : 2998 - 3006
  • [4] Dual actuation for high-bandwidth nanopositioning
    Schitter, Georg
    Rijkee, Wouter F.
    Nghi Phan
    47TH IEEE CONFERENCE ON DECISION AND CONTROL, 2008 (CDC 2008), 2008, : 5176 - 5181
  • [5] High-Bandwidth Control of Nanopositioning Stages via an Inner-Loop Delayed Position Feedback
    Yang, Mei-Ju
    Niu, Jin-Bo
    Li, Chun-Xia
    Gu, Guo-Ying
    Zhu, Li-Min
    IEEE TRANSACTIONS ON AUTOMATION SCIENCE AND ENGINEERING, 2015, 12 (04) : 1357 - 1368
  • [6] High-bandwidth control of a piezoelectric nanopositioning stage in the presence of plant uncertainties
    Aphale, Sumeet S.
    Devasia, Santosh
    Moheimani, S. O. Reza
    NANOTECHNOLOGY, 2008, 19 (12)
  • [7] Achieving High-Bandwidth Nanopositioning In Presence of Plant Uncertainties
    Aphale, Sumeet S.
    Devasia, Santosh
    Moheimani, S. O. Reza
    2008 IEEE/ASME INTERNATIONAL CONFERENCE ON ADVANCED INTELLIGENT MECHATRONICS, VOLS 1-3, 2008, : 943 - +
  • [8] Capacitive Instrumentation and Sensor Fusion for High-Bandwidth Nanopositioning
    Moore, Steven Ian
    Fleming, Andrew J.
    Yong, Yuen Kuan
    IEEE SENSORS LETTERS, 2019, 3 (08)
  • [9] Intelligent Tracking Error Prediction and Feedforward Compensation for Nanopositioning Stages With High-Bandwidth Control
    Meng, Yixuan
    Wang, Xiangyuan
    Huang, Wei-Wei
    Li, Linlin
    Hu, Chuxiong
    Zhang, XinQuan
    Zhu, LiMin
    IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2023, 19 (05) : 6460 - 6470
  • [10] Design, Characterization, and Control of a Monolithic Three-Axis High-Bandwidth Nanopositioning Stage
    Kenton, Brian J.
    Leang, Kam K.
    2010 AMERICAN CONTROL CONFERENCE, 2010, : 4949 - 4956