Fuzzy-Based Fault-Tolerant Control for Omnidirectional Mobile Robot

被引:26
|
作者
Alshorman, Ahmad M. [1 ]
Alshorman, Omar [2 ]
Irfan, Muhammad [3 ]
Glowacz, Adam [4 ]
Muhammad, Fazal [5 ]
Caesarendra, Wahyu [6 ]
机构
[1] Jordan Univ Sci & Technol, Mech Engn Dept, Mech Engn, Irbid 22110, Jordan
[2] Najran Univ, Fac Engn, Elect Engn Dept, Najran 61441, Saudi Arabia
[3] Najran Univ, Coll Engn, Elect Engn Dept, Najran 61441, Saudi Arabia
[4] AGH Univ Sci & Technol, Dept Automat Control & Robot, PL-30059 Krakow, Poland
[5] City Univ Sci & Informat Technol Peshawar, Dept Elect Engn, Peshawar 25000, Pakistan
[6] Univ Brunei Darussalam, Fac Integrated Technol, Jalan Tungku Link, BE-1410 Gadong, Brunei
关键词
mobile robots; path planning; fault control; fault identification; artificial potential fie led; fuzzy control; omnidirectional robot;
D O I
10.3390/machines8030055
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The motion-planning problem is well known in robotics; it aims to find a free-obstacle path from a starting point to a destination. To make use of actuation generosity and the fuzzy fast response behavior compared to other non-linear controllers, a fuzzy-based fault-tolerant control for an omnidirectional mobile robot with four Mecanum wheels is proposed. The objective is to provide the robot with an online scheme to control the robot motion while moving toward the final destination with avoiding obstacles in its environment and providing an adaptive solution for a combination of one or combination of the wheel's faults. The faults happen when the wheel does not receive the control command signal from the controller; in this case, the robot can rotate freely due to the interaction with the ground. The principle of fuzzy-based control proposed by Sugeno is used to develop the motion controller. The motion controller consists of two main controllers: the Run-To-Goal, and the obstacle-avoidance controller. The outputs of these two controllers are superposed to get the net potential force on the robot. By its simplicity, the fuzzy controller can be suitable for online applications (online path planning in our case). To the best of our knowledge, this is the first fuzzy-based fault-tolerant controller for an omnidirectional robot. The proposed controller is tested by a set of simulation scenarios to check the proposed fuzzy tolerant control. Kuka OmniRob is used as an example of the omnidirectional robot in these simulation runs. Matlab is used to build the fuzzy-based fault-tolerant control, and the 3D simulation is developed on the CoppeliaSim software. We examine five distinct scenarios, each one with a different fault state. In all scenarios, the proposed algorithm could control the robot to reach its final destination with the absence and presence of an obstacle in the workspace, despite actuator faults, without crossing the workspace boundaries.
引用
收藏
页数:20
相关论文
共 50 条
  • [31] FAULT DIAGNOSIS AND FAULT TOLERANT CONTROL OF MOBILE ROBOT BASED ON NEURAL NETWORKS
    Li, Zheng
    PROCEEDINGS OF 2009 INTERNATIONAL CONFERENCE ON MACHINE LEARNING AND CYBERNETICS, VOLS 1-6, 2009, : 1077 - 1081
  • [32] A Fault Hiding Approach for the Sliding Mode Fault-tolerant Control of a Non-holonomic Mobile Robot
    Stancu, Alexandru
    Codres, Eduard
    Puig, Vicenc
    2016 3RD CONFERENCE ON CONTROL AND FAULT-TOLERANT SYSTEMS (SYSTOL), 2016, : 7 - 14
  • [33] Study on Fault-tolerant Method of Mobile Robot Integrated Navigation
    Zeng Jing
    Guo Xiaosong
    Zhang Guoliang
    MECHATRONICS AND APPLIED MECHANICS II, PTS 1 AND 2, 2013, 300-301 : 468 - 474
  • [34] Markovian-Based Fault-Tolerant Control for Wheeled Mobile Manipulators
    Kang, Yu
    Li, Zhijun
    Dong, Yifan
    Xi, Hongsheng
    IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2012, 20 (01) : 266 - 276
  • [35] Fault-Tolerant Control of Nonlinear Systems Based on Fuzzy Neural Networks
    左东升
    姜建国
    JournalofDonghuaUniversity(EnglishEdition), 2009, 26 (06) : 634 - 638
  • [36] A CONTROL ARCHITECTURE FOR AN ADVANCED FAULT-TOLERANT ROBOT SYSTEM
    HORMANN, A
    MEIER, W
    SCHLOEN, J
    INTELLIGENT AUTONOMOUS SYSTEMS 2, VOLS 1 AND 2, 1989, : 576 - 585
  • [37] Control architecture for an advanced fault-tolerant robot system
    Hoermann, Andreas
    Meier, Wolfgang
    Schloen, Jan
    Robotics and Autonomous Systems, 1991, 7 (2-3) : 211 - 225
  • [38] An Adaptive Fault-tolerant Control Method for Robot Manipulators
    Zhang, Wenjie
    Yang, Xiaohui
    Xu, Zhenghong
    Zhang, Wei
    Yang, Li
    Liu, Xiaoping
    INTERNATIONAL JOURNAL OF CONTROL AUTOMATION AND SYSTEMS, 2021, 19 (12) : 3983 - 3995
  • [39] An Adaptive Fault-tolerant Control Method for Robot Manipulators
    Wenjie Zhang
    Xiaohui Yang
    Zhenghong Xu
    Wei Zhang
    Li Yang
    Xiaoping Liu
    International Journal of Control, Automation and Systems, 2021, 19 : 3983 - 3995
  • [40] High efficiency fault-detection and fault-tolerant control approach in Tennessee Eastman process via fuzzy-based neural network representation
    M. Adeli
    A. H. Mazinan
    Complex & Intelligent Systems, 2020, 6 : 199 - 212