Synthesis of Multistable Equilibrium Compliant Mechanisms Using Combinations of Bistable Mechanisms

Author:

Oh Young Seok1,Kota Sridhar1

Affiliation:

1. Department of Mechanical Engineering, University of Michigan, Ann Arbor, MI 48109-2125

Abstract

Abstract In this paper, we present a mathematical approach to synthesize multistable compliant mechanisms by combining multiple bistable equilibrium mechanisms. More specifically, we identify and categorize various types of bistabilities by characterizing the essential elements of their complicated deformation pattern. The behavior of a bistable compliant mechanism, in general, is highly nonlinear. Using combinations of such nonlinearities to capture the behavior of multistable (more than two stable positions) mechanisms can be quite challenging. To determine multistable behavior, our simplified mathematical scheme captures the essential parameters of bistability, such as the load-thresholds that cause the jump to the next stable position. This mathematical simplification enables us to characterize bistable mechanisms by using piecewise lower-order polynomials and, in turn, synthesize multistable mechanisms. Three case studies involving combinations of two, three, and four bistable behaviors are presented for the purpose of generating multistable mechanisms with up to 16 stable positions. The methodology enables us to design a compliant mechanism with a desired number of stable positions. A design example of a quadristable equilibrium rotational compliant mechanism consisting of two bistable submechanisms is presented to demonstrate the effectiveness of the approach.

Publisher

ASME International

Subject

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

Reference14 articles.

1. Synthesis of Multistable Equilibrium Linkage Systems Using an Optimization Approach;King;Struct. Multidiscip. Optim.

2. Design Synthesis of Multistable Compliant Structures;Kollata

3. Jensen, B. D., Howell, L. L., and Roach, G. M., 2001, “Bi-Stable Compliant Mechanism,” U.S. Patent No. 6,215,081 B1.

4. Geisberger, A., and Ellis, M. D., 2006, “Storing Mechanical Potential in a MEMS Device Using a Mechanically Multi-Stable Mechanism,” U.S. Patent No. 7,012,491 B1.

5. Harris, R. H. , 1978, “Buckling Spring Torsional Snap Actuator,” U.S. Patent No. 4,118,611.

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