Analytical dynamic solution of a flexible cable-suspended manipulator

Mahdi BAMDAD

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PDF(340 KB)
Front. Mech. Eng. ›› DOI: 10.1007/s11465-013-0271-9
RESEARCH ARTICLE
RESEARCH ARTICLE

Analytical dynamic solution of a flexible cable-suspended manipulator

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Abstract

Cable-suspended manipulators are used in large scale applications with, heavy in weight and long in span cables. It seems impractical to maintain cable assumptions of smaller robots for large scale manipulators. The interactions among the cables, platforms and actuators can fully evaluate the coupled dynamic analysis. The structural flexibility of the cables becomes more pronounced in large manipulators. In this paper, an analytic solution is provided to solve cable vibration. Also, a closed form solution can be adopted to improve the dynamic response to flexibility. The output is provided by the optimal torque generation subject to the actuator limitations in a mechatronic sense. Finally, the performance of the proposed algorithm is examined through simulations.

Keywords

parallel robot / flexible cable / suspended robot / dynamic

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Mahdi BAMDAD. Analytical dynamic solution of a flexible cable-suspended manipulator. Front Mech Eng, https://doi.org/10.1007/s11465-013-0271-9

References

[1]
Merlet J P. Parallel Robots, Springer, 2006
[2]
Albus J, Bostelman R, Dagalakis N. The NIST ROBOCRANE. Journal of Robotic Systems, 1993, 10(5): 709-724
CrossRef Google scholar
[3]
Williams R L II, Albus J S, Bostelman R V. Self-contained automated construction deposition system. Automation in Construction, 2004, 13(3): 393-407
CrossRef Google scholar
[4]
Bosscher P, Williams R L. A Concept for Rapidly-Deployable Cable Robot Search and Rescue Systems, in Proc. IDETC/CIE, ASME, 2005
[5]
Takemura F, Enomoto M, Tanaka T, Denou K, Kobayashi Y, Tadokoro S. Development of the balloon-cable driven robot for information collection from sky and proposal of the search strategy at a major disaster, in Proc. IEEE/ASME International Conference on Advanced Intelligent Mechatronics, 2005
[6]
Dewdney P, Nahon M, Veidt B. The large adaptive reflector: A giant radio telescope with an areo twist. Canadian Aeronautics and Space Journal, 2002, 48(4): 239-250
CrossRef Google scholar
[7]
Nan R, Peng B. A Chinese concept for the 1 km 2 radio telescope. Acta Astronautica, 2000, 12: 66
[8]
Carrión-Viramontes F J, Ló-López J A. Quintana-Rodríguez J A, Lozano-Guzmán A, Nonlinear assessment of cable vibration in a stayed bridge. Experimental Mechanics, 2008, 48(2): 153-161
CrossRef Google scholar
[9]
Abdel-Rahman E M, Nayfeh A.H, Masoud Z N. A review: dynamics and control of cranes. Journal of Vibration and Control, 2003, 9, 863
[10]
Cheng Y, Ren G, Dai S. The multi-body system modeling of the Gough-Stewart platform for vibration control. Journal of Sound and Vibration, 2005. 599-614
[11]
Jeong J, Kim S, Kwak Y. Kinematics and workspace analysis of a parallel cable mechanism for measuring a robot pose. Mechanism and Machine Theory, 1999, 34(6): 825-841
CrossRef Google scholar
[12]
Kozak K, Zhou Q, Wang J. Static Analysis of Cable-Driven Manipulators with Non-Negligible Cable Mass. IEEE Transactions on Robotics, 2006, 22(3): 425-433
[13]
Korayem M H, Bamdad M, Saadat M. Workspace Analysis of Cable-Suspended Robots with Elastic Cable; in Proc. IEEE International Conference, ROBIO, China, 2007
[14]
Diao X, Ma O. Vibration analysis of cable-driven parallel manipulators. Multibody System Dynamics, 2009, 21(4): 347-360
CrossRef Google scholar
[15]
Shiang W, Cannon D, Gorman J. Optimal Force Distribution Applied to a Robotic Crane with Flexible Cable, in Proc. IEEE Robotics & Automation, San Francisco, 2000
[16]
Zhang Y, Agrawal S K, Piovoso M J. Coupled Dynamics of Flexible Cables and Rigid End-Effector for a Cable Suspended Robot, in Proc. American Control Conference, 2006
[17]
Baicu C F, Rahn C D, Nibali B D. Active Boundary Control of Elastic Cables: Theory and Experiment. Journal of Sound and Vibration, 1996, 198(1): 17-26
CrossRef Google scholar
[18]
Korayem M H, Tourajizadeh H, Bamdad M. Dynamic Load Carrying Capacity of Flexible Cable Suspended Robot: Robust Feedback Linearization Control Approach. Journal of Intelligent & Robotic Systems, 2010, 60(3-4): 341-363
CrossRef Google scholar
[19]
Korayem M H, Davarzani E, Bamdad M. Optimal Trajectory Planning with Dynamic Load Carrying Capacity of Flexible Cable-suspended Manipulator. Scientia Iranica., 2010, 17: 315-326
[20]
Alp A B, Agrawal S K. Cable-suspended robots: Design, planning and control, in Proc. IEEE International Conference on Robotics and Automation, Washington D.C., 2002, 4275-4280
[21]
Duan Q J, Du J L, Duan B Y, Tang A F. Deployment/retrieval modeling of cable-driven parallel robot. Mathematical Problems in Engineering, 2010, 2010: 1-10
CrossRef Google scholar
[22]
Choo Y I, Casarella M J. A survey of analytical methods for dynamic simulation of cable-body systems. Journal of Hydronautics., 1973, 7(4): 137-144
CrossRef Google scholar
[23]
Hanes Supply Inc. Rope, 2010, http://www.hanessupply.co

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