Keywords
lattice flexures, compliant mechanisms, stiffness optimization
Abstract
Reducing the motion-direction stiffness of compliant mechanisms reduces their actuation effort and simplifies associated static balancing mechanisms. This work introduces a flexure type called lattice flexures and evaluates some of their fundamental properties. Lattice flexures have a reduced bending stiffness when compared to traditional rectangular-section blade flexures of similar size. The motion-direction bending stiffness of two lattice flexure types, called X-type and V-type, are analytically derived, corroborated with finite element analysis, and validated with measurements of physical prototypes. The lattice flexure has the potential to reduce the bending stiffness of some compliant mechanisms by 60-80%, as demonstrated in devices manufactured using 3D printing technologies. It is shown that some lattice flexures exhibit a torsional/bending stiffness ratio as much as 1.7 times higher than an equal aspect-ratio blade flexure, and a transverse bending/motion-direction bending stiffness ratio up to 6.5 times higher than an equal aspect-ratio blade flexure. Keywords: compliant, flexure, lattice flexure, cross-axis-flexural pivot, off-axis stiffness
Original Publication Citation
Merriam, E.G. and Howell, L.L., “Lattice Flexures: Geometries for Stiffness Reduction of Blade Flexures,” Precision Engineering, Vol 45, pp. 160-167, DOI:10.1016/j.precisioneng.2016.02.007, 2016.
BYU ScholarsArchive Citation
Howell, Larry L. and Merriam, Ezekiel G., "Lattice Flexures: Geometries for Stiffness Reduction of Blade Flexures" (2016). Faculty Publications. 9638.
https://scholarsarchive.byu.edu/facpub/9638
Document Type
Peer-Reviewed Article
Publication Date
2016-02-12
Publisher
Precision Engineering
Language
English
College
Ira A. Fulton College of Engineering
Department
Mechanical Engineering
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