The Active Disturbance Rejection Control with a Load Torque Observer for Secondary Regulation Hydraulic Speed System

被引:0
|
作者
Zhou, Yajun [1 ]
Wang, Xiangzhou [1 ]
Zheng, Shuhua [1 ]
机构
[1] Beijing Inst Technol, Sch Automat, Beijing 100081, Peoples R China
关键词
Secondary regulation system; Speed control; Active disturbance rejection control; Load torque observer; MOTOR; DESIGN;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper focuses on the speed control of the hydraulic secondary regulation system, which has a wide application prospect in hydraulic drive due to its high system efficiency, fast dynamic response and energy recovery capability. To obtain its robust speed control under the conditions of load disturbances and system parameters variations, an active disturbance rejection controller in conjunction with a load torque observer is proposed. The active disturbance rejection control doesn't depend on the accurate system model and is inherently robust against plant variations. The load torque observer is used to estimate load torque disturbances and the estimation is used as a feed-forward compensation in the inner loop. The simulation results show that the combination of outer loop active disturbance rejection controller and inner loop load torque observer can significantly improve the static and dynamic performance of the speed system. Compared with the conventional PID control or using a single control approach, the proposed control approach achieves a fast and robust response without overshoot and has a strong anti-disturbance ability, even in the case of large load torque disturbances and variations in system parameters.
引用
收藏
页码:3061 / 3066
页数:6
相关论文
共 50 条
  • [21] Active disturbance rejection control method for position servo system based on electro-hydraulic load sensing
    Liu H.
    Wang C.
    Guo X.
    Zhao B.
    Huo P.
    Wang, Chengwen (cwwang@yeah.net), 1600, Beijing University of Aeronautics and Astronautics (BUAA) (46): : 2131 - 2139
  • [22] Load Frequency Regulation using Linear Active Disturbance Rejection Control Technique
    Kumar, Anand
    Anwar, Md Nishat
    Kumar, Ranjeet
    2020 INTERNATIONAL CONFERENCE ON EMERGING FRONTIERS IN ELECTRICAL AND ELECTRONIC TECHNOLOGIES (ICEFEET 2020), 2020,
  • [23] Method of aircraft active disturbance rejection control based on disturbance observer
    Jiang, Limin
    Chen, Shuxuan
    Lu, Kunfeng
    Xi Tong Gong Cheng Yu Dian Zi Ji Shu/Systems Engineering and Electronics, 2024, 46 (11): : 3883 - 3892
  • [24] The Active Disturbance Rejection Control with Feed-forward Compensation for Hydraulic Pump Controlled Motor Speed System
    Ning, Sai
    Zheng, Shuhua
    Wang, Xiangzhou
    FIFTH INTERNATIONAL CONFERENCE ON INTELLIGENT CONTROL AND INFORMATION PROCESSING (ICICIP), 2014, : 144 - 150
  • [25] Disturbance Observer Based Speed Control of A Variable Displacement Pump-Driven-Motor System with Impedance Torque Regulation
    Li, Mingjie
    Wei, Jianhua
    2018 ANNUAL AMERICAN CONTROL CONFERENCE (ACC), 2018, : 5946 - 5951
  • [26] Modeling and multivariable active disturbance rejection control of a hydraulic looper multivariable system
    Yin, F-C
    Wang, C-Z
    Shao, H.
    SCIENTIA IRANICA, 2018, 25 (06) : 3401 - 3413
  • [27] ACTIVE DISTURBANCE REJECTION CONTROL (ADRC) OF ELECTRO-HYDRAULIC SERVO SYSTEM
    Cai, Y.Q. (cyq@ncst.edu.cn), 2025, 64 (1-2): : 81 - 83
  • [28] ACTIVE DISTURBANCE REJECTION CONTROL (ADRC) OF ELECTRO-HYDRAULIC SERVO SYSTEM
    Li, D. H.
    Cai, Y. Q.
    Yin, Q. Q.
    Wang, H. L.
    METALURGIJA, 2025, 64 (1-2): : 81 - 83
  • [29] Harmonic torque vibration analysis and active disturbance rejection control of high-speed train
    Li W.
    Wei J.
    Wu P.
    Shi H.
    Zhu W.
    Zhang Y.
    Zhendong yu Chongji/Journal of Vibration and Shock, 2022, 41 (01): : 98 - 106and120
  • [30] Linear Active Disturbance Rejection Controllers for PMSM Speed Regulation System Considering the Speed Filter
    Zuo, Yuefei
    Mei, Jie
    Jiang, Chaoqiang
    Yuan, Xin
    Xie, Shuangchun
    Lee, Christopher H. T.
    IEEE TRANSACTIONS ON POWER ELECTRONICS, 2021, 36 (12) : 14579 - 14592