Design of Multimaterial Compliant Mechanisms Using Level-Set Methods

Author:

Wang Michael Yu1,Chen Shikui1,Wang Xiaoming2,Mei Yulin2

Affiliation:

1. Department of Automation and Computer-Aided Engineering, The Chinese University of Hong Kong, Shatin, NT, Hong Kong

2. School of Mechanical Engineering, Dalian University of Technology, Dalian 116024, China

Abstract

A monolithic compliant mechanism transmits applied forces from specified input ports to output ports by elastic deformation of its comprising materials, fulfilling required functions analogous to a rigid-body mechanism. In this paper, we propose a level-set method for designing monolithic compliant mechanisms made of multiple materials as an optimization of continuum heterogeneous structures. Central to the method is a multiphase level-set model that precisely specifies the distinct material regions and their sharp interfaces as well as the geometric boundary of the structure. Combined with the classical shape derivatives, the level-set method yields an Eulerian computational system of geometric partial differential equations, capable of performing topological changes and capturing geometric evolutions at the interface and the boundary. The proposed method is demonstrated for single-input and single-output mechanisms and illustrated with several two-dimensional examples of synthesis of multimaterial mechanisms of force inverters and gripping and clamping devices. An analysis on the formation of de facto hinges is presented based on the shape gradient information. A scheme to ensure a well-connected topology of the mechanism during the process of optimization is also presented.

Publisher

ASME International

Subject

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

Reference51 articles.

1. Burns, R. H., and Crossley, F., 1966, “Structural Permutations of Flexible Link Mechanisms,” ASME Paper No. 66-Mech-5.

2. Compliance Number Concept for Compliant Mechanism and Type Synthesis;Her;ASME J. Mech., Transm., Autom. Des.

3. The Topological Synthesis of Compliant Mechanisms;Murphy

4. A Loop-Closure Theory for the Analysis and Synthesis of Compliant Mechanisms;Howell;J. Mech. Des.

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