An Analytical Model for Nonlinear-Elastic Compliant Mechanisms With Tension–Compression Asymmetry

Author:

Hargrove Brianne1,Frecker Mary1,Nastevska Angela23,Jovanova Jovana4

Affiliation:

1. Penn State University Department of Mechanical Engineering, , University Park, PA 16802

2. University of Cambridge , Str. 516 No. 1, Skopje 1000 , North Macedonia

3. Kentaur-Impex , Str. 516 No. 1, Skopje 1000 , North Macedonia

4. Delft University of Technology Department of Mechanical Engineering, , Mekelweg 5, Delft 2628 CD , The Netherlands

Abstract

Abstract While nonlinear-elastic materials demonstrate potential in enhancing the performance of compliant mechanisms, their behavior still needs to be captured in a generalized mechanical model. To inform new designs and functionality of compliant mechanisms, a better understanding of nonlinear-elastic materials is necessary and, in particular, their mechanical properties that often differ in tension and compression. In the current work, a beam-based analytical model incorporating nonlinear-elastic material behavior is defined for a folding compliant mechanism geometry. Exact equations are derived capturing the nonlinear curvature profile and shift in the neutral axis due to the material asymmetry. The deflection and curvature profile are compared with finite element analysis along with stress distribution across the beam thickness. The analytical model is shown to be a good approximation of the behavior of nonlinear-elastic materials with tension–compression asymmetry under the assumptions of the von Kármán strain theory. Through a segmentation approach, the geometries of a semicircular arc and folding compliant mechanism design are defined. The deflection of the folding compliant mechanism due to an applied tip load is then evaluated against finite element analysis and experimental results. The generalized methods presented highlight the utility of the model for designing and predicting the behavior of other compliant mechanism geometries and different nonlinear-elastic materials.

Publisher

ASME International

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Synthesis of Superelastic Compliant Mechanisms for Target Shape Matching;2024 6th International Conference on Reconfigurable Mechanisms and Robots (ReMAR);2024-06-23

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