Fuzzy MRAC controller design for vane-type air motor systems

被引:17
|
作者
Hwang, Yean-Ren [1 ,2 ]
Shen, Yu-Da [1 ]
Jen, Kuo-Kuang [1 ]
机构
[1] Natl Cent Univ, Dept Mech Engn, Chungli 320, Taiwan
[2] Natl Cent Univ, Inst Optomechatron Engn, Chungli 320, Taiwan
关键词
air motor; dead-zone; MRAC; fuzzy logic controller;
D O I
10.1007/s12206-007-1204-5
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Air motors are widely used in the automation industry due to special requirements, such as spark-prohibited environments, the mining industry, chemical manufacturing plants, and so on. The purpose of this paper is to analyze the behavior of a vane-type air motor and to design a model reference adaptive control (MRAC) with a fuzzy friction compensation controller. It has been noted that the rotational speed of the air motor is closely related to the compressed air's pressure and flow rate, and due to the compressibility of air and the fiction in the mechanism, the overall system is actually nonlinear with dead-zone behavior. The performance of the previous controllers implemented on an air motor system demonstrated a large overshoot, slow response and significant fluctuation errors around the setting points. It is important to eliminate the dead-zone to improve the control performance. By considering the effects of the dead-zone behavior, we have developed an MRAC with fuzzy friction compensation controller to overcome the effect of the dead-zone. The following experimental results are given to validate the proposed speed control strategy.
引用
收藏
页码:497 / 505
页数:9
相关论文
共 50 条
  • [31] Design of Compound Fuzzy Controller for Multivariable Systems
    Zhang, Xueming
    Zhang, Guixiang
    Shao, Feng
    Yang, Qingjie
    E-ENGINEERING & DIGITAL ENTERPRISE TECHNOLOGY VII, PTS 1 AND 2, 2009, 16-19 : 150 - 154
  • [32] Design on Sliding Mode Controller with Adaptive Fuzzy Compensation for Switched Reluctance Motor Drive Systems
    Wang, Shun-Yuan
    Liu, Foun-Yuan
    Chou, Len-Hsiang
    2016 INTERNATIONAL SYMPOSIUM ON COMPUTER, CONSUMER AND CONTROL (IS3C), 2016, : 239 - 242
  • [33] Robust Controller Design for Switched Fuzzy Systems
    Yang, Hong
    Liu, Xiao-dong
    Zhang, Le
    2008 CHINESE CONTROL AND DECISION CONFERENCE, VOLS 1-11, 2008, : 3436 - +
  • [34] Inverse controller design for fuzzy interval systems
    Boukezzoula, R
    Foulloy, L
    Galichet, S
    IEEE TRANSACTIONS ON FUZZY SYSTEMS, 2006, 14 (01) : 111 - 124
  • [35] Delayed fuzzy controller design for hyperchaotic systems
    Liu, Xingwen
    Gao, Xin
    2006 INTERNATIONAL CONFERENCE ON COMMUNICATIONS, CIRCUITS AND SYSTEMS PROCEEDINGS, VOLS 1-4: VOL 1: SIGNAL PROCESSING, 2006, : 2394 - 2397
  • [36] Design and application of fuzzy controller for traction motor in metro vehicle
    Ozdemir, E
    Ural, A
    Karakas, E
    Olcer, E
    Karagoz, B
    TRANSPORTATION SYSTEMS 1997, VOLS 1-3, 1997, : 687 - 692
  • [37] Design of fuzzy logic controller for an induction motor speed drive
    Lai, MF
    Chang, C
    Chiou, WY
    SICE '97 - PROCEEDINGS OF THE 36TH SICE ANNUAL CONFERENCE, INTERNATIONAL SESSION PAPERS, 1997, : 1071 - 1076
  • [38] Adaptive critic based design of a fuzzy motor speed controller
    Shannon, TT
    Lendaris, GG
    PROCEEDINGS OF THE 2001 IEEE INTERNATIONAL SYMPOSIUM ON INTELLIGENT CONTROL (ISIC'01), 2001, : 359 - 363
  • [39] STABILITY ANALYSIS AND CONTROLLER DESIGN OF DISCRETE INTERVAL TYPE-2 FUZZY SYSTEMS
    Sheng, Long
    Ma, Xiaoyu
    ASIAN JOURNAL OF CONTROL, 2014, 16 (04) : 1091 - 1104
  • [40] Stability Analysis and Controller Design of Discrete Interval Type-2 Fuzzy Systems
    Sheng, Long
    Li, Chunguang
    2011 INTERNATIONAL CONFERENCE ON COMPUTERS, COMMUNICATIONS, CONTROL AND AUTOMATION (CCCA 2011), VOL III, 2010, : 132 - 135