A Segmented Geometry Method for Kinematics and Configuration Planning of Spatial Hyper-Redundant Manipulators

被引:46
|
作者
Mu, Zonggao [1 ]
Yuan, Han [1 ]
Xu, Wenfu [1 ,2 ]
Liu, Tianliang [1 ]
Liang, Bin [3 ]
机构
[1] Harbin Inst Technol, Shenzhen Grad Sch, Sch Mech Engn & Automat, Shenzhen 518055, Guangdong, Peoples R China
[2] Harbin Inst Technol, State Key Lab Robot & Syst, Harbin 150001, Heilongjiang, Peoples R China
[3] Tsinghua Univ, Sch Informat Sci & Technol, Dept Automat, Beijing 100084, Peoples R China
基金
中国国家自然科学基金;
关键词
Manipulators; Kinematics; Geometry; Elbow; Wrist; Shoulder; Planning; Configuration control; geometric methods; hyper-redundant manipulators; inverse kinematics; INVERSE KINEMATICS; OBSTACLE AVOIDANCE; ROBOTS;
D O I
10.1109/TSMC.2017.2784828
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
With many degrees of freedom (DOFs), a hyper-redundant manipulator has superior dexterity and flexible manipulation ability. However, its inverse kinematics and configuration planning are very challenging. With the increase in the number of DOFs, the corresponding computation load or training set will be much larger for traditional methods (such as the generalized inverse method and the artificial neural network method). In this paper, a segmented geometry method is proposed for a spatial hyper-redundant manipulator to solve the above problems. Similar to the human arm, the hyper-redundant manipulator is segmented into three sections from geometry, i.e., shoulder, elbow, and wrist. Then, its kinematics can be solved separately according to the segmentation, which reduces the complexity of the solution and simplifies the computation of the inverse kinematics. Furthermore, the configuration is parameterized by several parameters, i.e., the arm-angle, space arc parameters, and desired direction vector. The shoulder has proximal four DOFs, which is redundant for positioning the elbow and avoiding the joint limit. The arm-angle parameter is defined to solve the redundancy. The wrist consists of the distal two DOFs, and its joints are determined to match the desired direction vector of the end-effector. All the other joints (except for the joints belonging to shoulder and wrist) compose the elbow. These joint angles are solved by using space arc-based method. The configuration planning for avoiding joint limit, obstacles, and inspecting narrow pipeline are detailed for practical applications. Finally, circular trajectory tracking and pipeline inspection are, respectively, simulated and experimented on a 20-DOFs hyper-redundant manipulator. The results show that the proposed method can give solutions of the three-dimensional-pose-determining problem and the configuration-planning problem. The computation of the inverse kinematics is simplified for real-time control. It can also be applied to other spatial hyper-redundant manipulators with similar serial configurations.
引用
收藏
页码:1746 / 1756
页数:11
相关论文
共 50 条
  • [31] Brain-Inspired Strategy for the Motion Planning of Hyper-Redundant Manipulators
    Zhao, Liangliang
    Zhao, Jingdong
    Liu, Hong
    [J]. 2016 IEEE INTERNATIONAL CONFERENCE ON CYBER TECHNOLOGY IN AUTOMATION, CONTROL, AND INTELLIGENT SYSTEMS (CYBER), 2016, : 267 - 272
  • [32] A POTENTIAL-BASED PATH PLANNING ALGORITHM FOR HYPER-REDUNDANT MANIPULATORS
    Lin, Chien-Chou
    Chuang, Jen-Hui
    [J]. JOURNAL OF THE CHINESE INSTITUTE OF ENGINEERS, 2010, 33 (03) : 415 - 427
  • [33] Optimum Trajectory Generation for Redundant/Hyper-Redundant Manipulators
    Ayten, K. Koray
    Sahinkaya, M. Necip
    Dumlu, Ahmet
    [J]. IFAC PAPERSONLINE, 2016, 49 (21): : 493 - 500
  • [34] Motion Planning of Hyper-Redundant Manipulators Based on Ant Colony Optimization
    Zhao, Jingdong
    Zhao, Liangliang
    Liu, Hong
    [J]. 2016 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND BIOMIMETICS (ROBIO), 2016, : 1250 - 1255
  • [35] THE KINEMATICS OF HYPER-REDUNDANT ROBOT LOCOMOTION
    CHIRIKJIAN, GS
    BURDICK, JW
    [J]. IEEE TRANSACTIONS ON ROBOTICS AND AUTOMATION, 1995, 11 (06): : 781 - 793
  • [36] Research on kinematics modeling and path planning of a hyper-redundant continuum robot
    Sheng, Zhongqi
    Wang, Yubin
    Li, Shicheng
    Yang, Jianyu
    Xie, Hualong
    Lu, Xiao
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART C-JOURNAL OF MECHANICAL ENGINEERING SCIENCE, 2024, 238 (12) : 5880 - 5890
  • [37] A Spatial Path Following Method for Hyper-Redundant Manipulators by Step-by-Step Search and Calculating
    Ji, Hongcheng
    Xie, Haibo
    Yang, Huayong
    [J]. 2022 7TH INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION ENGINEERING, ICRAE, 2022, : 292 - 298
  • [38] A Hybrid Obstacle-Avoidance Method of Spatial Hyper-Redundant Manipulators for Servicing in Confined Space
    Mu, Zonggao
    Liu, Tianliang
    Xu, Wenfu
    Lou, Yunjiang
    Liang, Bin
    [J]. ROBOTICA, 2019, 37 (06) : 998 - 1019
  • [39] A LOCAL FEEDBACK LAW FOR HYPER-REDUNDANT MANIPULATORS
    KOBAYASHI, H
    OHTAKE, S
    [J]. ADVANCED ROBOTICS, 1995, 9 (03) : 245 - 253
  • [40] The Control of The Hyper-redundant Manipulators by Frequency Criteria
    Ivanescu, Mircea
    Florescu, Mihaela Cecilia
    Popescu, Nirvana
    Popescu, Decebal
    [J]. STUDIES IN INFORMATICS AND CONTROL, 2009, 18 (03): : 279 - 288