A Relaxation Method for Simulating the Kinematics of Compound Nonlinear Mechanisms

Author:

Lipson Hod1

Affiliation:

1. Sibley School of Mechanical and Aerospace Engineering and Faculty of Computing and Information, Cornell University, Ithaca, NY 14853

Abstract

This paper describes a relaxation-based method for simulating 2D and 3D compound kinematic mechanisms. The relaxational process iteratively propagates node motions and degrees of freedom throughout a given kinematic mechanism. While relaxation methods were classically used to solve static problems, we show that the propagation of displacements during the calculation process itself reveals the kinematics of the structure. The method is slower than approaches based on solving simultaneous differential equations of motion, but provides several advantages: It achieves a higher level of accuracy, is more robust in handling transient singularities and degeneracies of the mechanism, and can handle more complex compound mechanisms with many links in multiple entangled kinematic chains. It also allows straightforward introduction of linkages with nonlinear behaviors such as wrapping strings, hydraulics, actuators, contacts, and other arbitrary responses. The basic simulation algorithm is presented, and a number of applications are provided including robotics, design, and biomechanics.

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

Reference22 articles.

1. Ferguson, E. S. , 1962, “Kinematics of Mechanisms from the time of Watt,” Smithsonian Institution Bulletin No. 228, pp. 185–230 (available online at (18)).

2. Reuleaux, F. , 1876, “The Kinematics of Machinery: Outlines of a Theory of Machines,” London: Macmillan (available online at (16)).

3. Kent, S. L. , 2002, “Engines and Engineering: What to Expect in the Future of PC Games,” gamespy.com (http://archive.gamespy.com/futureofgaming/engines).

4. Kinematics and Workspace Analysis of Protein Based Nano-Actuators;Sharma;J. Mech. Des.

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