Finite-Time Fault-Tolerant Control for a Robotic Manipulator With Output Constraint and Uncertainties

被引:0
作者
Duc Thien Tran [1 ]
Ahn, Kyoung Kwan [2 ]
机构
[1] Ho Chi Minh City Univ Technol & Educ, Dept Automat Control, Ho Chi Minh City 7U W00, Vietnam
[2] Univ Ulsan, Sch Mech Engn, Ulsan 44610, South Korea
关键词
Actuators; Manipulators; Fault tolerant systems; Fault tolerance; Observers; Backstepping; Control systems; Robotic manipulator; transformation technique; fractional-order terms; backstepping control; fault-tolerant control; output constraints; saturation constraints; external disturbance; Lyapunov approach; BARRIER LYAPUNOV FUNCTIONS; SLIDING MODE OBSERVER; NONLINEAR-SYSTEMS; ADAPTIVE-CONTROL; DIAGNOSIS;
D O I
10.1109/ACCESS.2021.3122010
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 proposed a finite-time backstepping control for a robotic manipulator under the presence of actuator fault, saturation constraints, output constraints, and external disturbance to obtain requirements about the robustness, fast convergence, and high accuracy tracking performance. To manage the above challenges, the proposed control is designed on a transformed model with the backstepping approach and extended state observer. The transformed model is resulted from converting a constrained system based on a transformation technique. So, it provides an ability for the proposed control to obtain the prescribed performance of the output response. Additionally, an extended state observer is conducted to deal with the lumped uncertainties in the system. The essential characteristic of the proposed control is no required knowledge of the actuator faults and external disturbance to be available. Furthermore, fractional-order terms are added in the control laws to enhance the rate of output responses. To demonstrate the advantages of the proposed control in terms of global asymptotic stability, the Lyapunov approach is used to verify the whole controlled system in theory. The proposed control is applied to a 2-degree of freedom (DOF) manipulator and simulated by MATLAB Simulink. Its simulation results are compared to other state-of-the-art methods to exhibit the effectiveness of the proposed control.
引用
收藏
页码:146771 / 146782
页数:12
相关论文
共 41 条
[31]   Adaptive actuator failure compensation control of uncertain nonlinear systems with guaranteed transient performance [J].
Wang, Wei ;
Wen, Changyun .
AUTOMATICA, 2010, 46 (12) :2082-2091
[32]   Adaptive Integral-Type Terminal Sliding Mode Fault Tolerant Control or Spacecraft Attitude Tracking [J].
Wang, Zhao ;
Li, Qi ;
Li, Shurong .
IEEE ACCESS, 2019, 7 :35195-35207
[33]   Adaptive neural network control of uncertain robotic manipulators with external disturbance and time-varying output constraints [J].
Wu, Yuxiang ;
Huang, Rui ;
Li, Xian ;
Liu, Song .
NEUROCOMPUTING, 2019, 323 :108-116
[34]   New Adaptive Control Methods for n-Link Robot Manipulators With Online Gravity Compensation: Design and Experiments [J].
Yang, Tong ;
Sun, Ning ;
Fang, Yongchun ;
Xin, Xin ;
Chen, He .
IEEE TRANSACTIONS ON INDUSTRIAL ELECTRONICS, 2022, 69 (01) :539-548
[35]   Prescribed Performance Control of One-DOF Link Manipulator With Uncertainties and Input Saturation Constraint [J].
Yang, Yang ;
Tan, Jie ;
Yue, Dong .
IEEE-CAA JOURNAL OF AUTOMATICA SINICA, 2019, 6 (01) :148-157
[36]   Disturbance observer-based backstepping sliding mode fault-tolerant control for the hydro-turbine governing system with dead-zone input [J].
Yi, Yapeng ;
Chen, Diyi .
ISA TRANSACTIONS, 2019, 88 :127-141
[37]   Finite-time command filtered backstepping control for a class of nonlinear systems [J].
Yu, Jinpeng ;
Shi, Peng ;
Zhao, Lin .
AUTOMATICA, 2018, 92 :173-180
[38]   Fault-tolerant control for descriptor stochastic systems with extended sliding mode observer approach [J].
Yu, Jinyong ;
Sun, Yiyong ;
Lin, Weiyang ;
Li, Zhan .
IET CONTROL THEORY AND APPLICATIONS, 2017, 11 (08) :1079-1087
[39]   Finite Time Fault Tolerant Attitude Control-Based Observer for a Rigid Satellite Subject to Thruster Faults [J].
Zhang, A. Aihua ;
Lv, B. Chengcong ;
Zhang, C. Zhiqiang ;
She, D. Zhiyong .
IEEE ACCESS, 2017, 5 :16808-16817
[40]   Adaptive Neural Control for Robotic Manipulators With Output Constraints and Uncertainties [J].
Zhang, Shuang ;
Dong, Yiting ;
Ouyang, Yuncheng ;
Yin, Zhao ;
Peng, Kaixiang .
IEEE TRANSACTIONS ON NEURAL NETWORKS AND LEARNING SYSTEMS, 2018, 29 (11) :5554-5564