Translational planar cable-direct-driven robots

被引:46
作者
Williams II, Robert L. [1 ]
Gallina, Paolo [2 ]
机构
[1] Department of Mechanical Engineering, 257 Stocker Center, Ohio University, Athens
[2] University of Trieste, Trieste
来源
Journal of Intelligent and Robotic Systems: Theory and Applications | 2003年 / 37卷 / 01期
关键词
Actuation redundancy; Cable-direct-driven robots; Control; Dynamic minimum torque estimation; Dynamics; Statics workspace; Translational tasks;
D O I
10.1023/A:1023975507009
中图分类号
学科分类号
摘要
A planar cable-direct-driven robot (CDDR) architecture is introduced with only translational freedoms. The motivation behind this work is to improve the serious cable interference problem with existing CDDRs and to avoid configurations where negative cable tensions are required to exert general forces on the environment and during dynamic motions. These problems generally arise for rotational CDDR motions. Thus, we propose a class of purely translational CDDRs; of course, these are not general but may only perform tasks where no rotational motion or resistance of moments is required at the end-effector. This article includes kinematics and statics modeling, determination of the statics workspace (the space wherein all possible Cartesian forces may be exerted with only positive cable tensions), plus a dynamics model and simulated control for planar translational CD-DRs. Examples are presented to demonstrate simulated control including feedback linearization of the 4-cable CDDR (with two degrees of actuation redundancy) performing a Cartesian task. We introduce an on-line dynamic minimum torque estimation algorithm to ensure all cable tensions remain positive for all motion; otherwise slack cables result from the CDDR dynamics and control is lost.
引用
收藏
页码:69 / 96
页数:27
相关论文
共 16 条
[1]  
Albus J.S., Bostelman R., Dagalakis N.G., The NIST Robocrane, J. Robotic Systems, 10, 5, pp. 709-724, (1993)
[2]  
Barette O., Gosselin C.M., Kinematic analysis and design of planar parallel mechanisms actuated with cables, ASME Design Technical Conference, (2000)
[3]  
Campbell P.D., Swaim P.L., Thompson C.J., Charlotte robot technology for space and terrestrial applications, 25th Internat. Conf. on Environmental Systems, (1995)
[4]  
Choe W., Kino H., Katsuta K., Kawamura S., A design of parallel wire-driven robots for ultrahigh speed motion based on stiffness analysis, ASME Japan/USA Symposium on Flexible Automation, 1, pp. 159-166, (1996)
[5]  
Gosselin C.M., Parallel computation algorithms for the kinematics and dynamics of planar and spatial parallel manipulators, J. Dyn. Systems Measm. Control, 118, 1, pp. 22-28, (1996)
[6]  
Kawamura S., Ito K., New type of master robot for teleoperation using a radial wire drive system, Proc. of the IEEE/RSJ Internat. Conf. on Intelligent Robots and Systems, pp. 55-60, (1993)
[7]  
Kock S., Schumacher W., Control of fast parallel robot with a redundant chain and gearboxes: Experimental results, IEEE Internat. Conf. on Robotics and Automation, pp. 1924-1929, (2000)
[8]  
Lewis F.L., Abdallah C.T., Dawson D.M., Control of Robot Manipulators, (1993)
[9]  
Lindemann R., Tesar D., Construction and demonstration of a 9-string 6-DOF force reflecting joystick for telerobotics, NASA Internat. Conf. on Space Telerobotics, 4, pp. 55-63, (1989)
[10]  
Roberts R.G., Graham T., Lippitt T., On the inverse kinematics, statics, and fault tolerance of cable-suspended robots, J. Robotic Systems, 15, 10, pp. 581-597, (1998)