Dual-space Adaptive Synchronization Control of Cable-driven Parallel Robots

被引:0
|
作者
Zhang B. [1 ]
Zhang F. [1 ]
Zhou F. [1 ]
Shang W. [1 ]
Cong S. [1 ]
机构
[1] Department of Automation, University of Science and Technology of China, Hefei
来源
Jiqiren/Robot | 2020年 / 42卷 / 02期
关键词
Cable robot; Motion control; Parallel robot; Synchronization control;
D O I
10.13973/j.cnki.robot.190488
中图分类号
学科分类号
摘要
The main challenge of cable-driven parallel robots (CDPRs) stems from the motion control in which cables should keep in tension and coordinate each other during motion. Moreover, the uncertain model parameters also should be considered due to their influences on the motion control to some extent. To solve the above problems, a novel dual-space adaptive synchronization control (DASC) scheme is proposed to combine the adaptive synchronization in the cable length space with the adaptive compensation in the workspace. In the DASC scheme, the cable synchronization error is presented to represent the coordination motion relation among cables, and a dual-space adaptive method is then developed to compensate for the uncertain model parameters in different spaces in real time. The stability of the closed-loop system with the DASC scheme is proved strictly. The experimental results indicate that, compared with the traditional augmented PD (APD) control scheme, the DASC scheme can greatly improve the tracking accuracy of cables and the coordination relation among cables, and eventually increase the control accuracy of the mobile platform. Meanwhile, the adaptive effect in the DASC scheme can effectively compensate for the impact of the mass change of the terminal mobile platform. © 2020, Science Press. All right reserved.
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页码:139 / 147
页数:8
相关论文
共 23 条
  • [1] Qian S., Zi B., Shang W.W., Et al., A review on cable-driven parallel robots, Chinese Journal of Mechanical Engineering, 31, 1, (2018)
  • [2] Lu B., Fang Y.C., Sun N., Et al., Antiswing control of offshore boom cranes with ship roll disturbances, IEEE Transactions on Control Systems Technology, 26, 2, pp. 740-747, (2018)
  • [3] Wang W.J., Yu L.T., Yang J., Et al., Full closed-loop position control of the surgical cable-driven micromanipulator based on joint angle estimator, Robot, 40, 2, pp. 231-239, (2018)
  • [4] Song D., Zhang L.X., Wang B.J., Et al., The control strategy of flexible cable driven force interactive robot, Robot, 40, 4, pp. 440-447, (2018)
  • [5] Zhang L.X., Li L.L., Jiang X.Z., Et al., Force control and experimental study of a cable-driven robot for astronaut deep squat training, Robot, 39, 5, pp. 733-741, (2017)
  • [6] Nan R.D., Jiang P., Five-hundred-meter aperture spherical radio telescope(FAST), Journal of Mechanical Engineering, 53, 17, pp. 1-3, (2017)
  • [7] Oh S.R., Agrawal S.K., A reference governor-based controller for a cable robot under input constraints, IEEE Transactions on Control Systems Technology, 13, 4, pp. 639-645, (2005)
  • [8] Caverly R.J., Forbes J.R., Flexible cable-driven parallel manipulator control: Maintaining positive cable tensions, IEEE Transactions on Control Systems Technology, 26, 5, pp. 1874-1883, (2018)
  • [9] Babaghasabha R., Khosravi M.A., Taghirad H.D., Adaptive robust control of fully-constrained cable driven parallel robots, Mechatronics, 25, 1, pp. 27-36, (2015)
  • [10] Fang S.Q., Franitza D., Torlo M., Et al., Motion control of a tendonbased parallel manipulator using optimal tension distribution, IEEE/ASME Transactions on Mechatronics, 9, 3, pp. 561-568, (2004)