Dynamic Analysis and Simulation of 4R 3-DOF Wrists

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Abstract:

In this paper, a systematic algorithm for the dynamic analysis of 4R 3-DOF wrists is presented. Based on the theory of graph, kinematics is completed. Links are divided into primary links and secondary links. The generalized inertia force of the system results from the motions of primary links and secondary links. The concept of virtual 3R 3-DOF open-loop chain and additional link are introduced to describe the primary links. The generalized inertia forces of 3R 3-DOF open-loop chain, additional link and secondary links are derived by Lagrangian formulation, respectively, based on their location in the wrist. Then the dynamic equation of 4R 3-DOF wrists is got by making a combining. A simulation is performed to illustrate the efficiency of the algorithm.

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93-100

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May 2016

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] Bruyninckx H., Thielemans H., Schutter J.D.: Efficient kinematics of a spherical 4R wrist by means of an equivalent 3R wrist. Mechanism and Machine Theory. 1998, 33(6): 649-659.

DOI: 10.1016/s0094-114x(97)00057-8

Google Scholar

[2] Hwang Y.L.: Recursive Newton-Euler Formulation for Flexible Dynamic Manufacturing Analysis of Open-Loop Robotic Systems. The International Journal of Advanced Manufacturing Technology, 2006, 29(5): 598-604.

DOI: 10.1007/s00170-005-2530-3

Google Scholar

[3] Sciavicco L., Siciliano B., Villani L.: Lagrange and Newton-Euler Dynamic Modeling of a Gear-Driven Robot Manipulator with Inclusion of Motor Inertia Effects. Advanced Robotics. 1995, 10(3): 317-334.

DOI: 10.1163/156855395x00427

Google Scholar

[4] Huo Wei. Robot Dynamics and Control. Higher Education, Beijing, (2005).

Google Scholar

[5] Filipovic M., Djuric A., Kevac L.: The significance of adopted Lagrange's principle of virtual work used for modeling aerial robots. Applied Mathematical Modeling. 2015, 39(7): 1804-1822.

DOI: 10.1016/j.apm.2014.09.019

Google Scholar

[6] Kane T.R., Levinson D.: Dynamics:theory and applications. McGraw-Hill, New York, (1985).

Google Scholar

[7] Hsieh H.I., Tsai L.W.: Kinematic analysis of epicyclic type transmission mechanisms using the concept of fundamental geared entities. ASME Journal of Mechanical Design. 1996, 18: 294-299.

DOI: 10.1115/1.2826883

Google Scholar

[8] Chen D.Z., Wang S.C.: Dynamic Modeling of Geared Robotic Mechanisms- The Virtual Link Approach. Mechanism and Machine Theory. 1999, 34(1): 105-121.

DOI: 10.1016/s0094-114x(98)00018-4

Google Scholar

[9] Chen D.Z., Lin T.W., Lin Y.L.: Dynamic analysis of geared robotic mechanisms by the concept of torque transmission. Mechanism and Machine Theory. 2000, 35(5): 629-643.

DOI: 10.1016/s0094-114x(99)00041-5

Google Scholar

[10] Angeles J.: Fundamentals of robotic mechanical systems: theory, methods, and algorithms. Springer, New York, (2003).

Google Scholar

[11] Liu Chaoying, Wang Zhanzhong, Han Yanjun et al.: Dynamic Analysis and Simulation of Continuous 3R Oblique Axis Non-spherical Wrist. In: IEEE International Conference on Automation and Logistics, Qingdao, 2008: 1166-1171.

DOI: 10.1109/ical.2008.4636328

Google Scholar