Asymmetric Multi-Stability from Relaxing the Rigid-Folding Conditions in a Stacked Miura-ori Cellular Solid
Jiayue Tao, Suyi Li

TL;DR
This paper demonstrates that relaxing rigid-folding conditions in stacked Miura-ori origami structures introduces asymmetric multi-stability, enabling new mechanical behaviors and energy barriers, with potential for advanced functional materials.
Contribution
It reveals how facet compliance in origami structures induces additional stable states and asymmetric energy barriers, expanding the design space beyond traditional rigid origami.
Findings
Rigid origami exhibits two stable states.
Facet compliance introduces two additional stable states.
Asymmetric energy barriers affect deformation paths.
Abstract
Traditionally, origami has been categorized into two groups according to their kinematics design: rigid and non-rigid origami. However, such categorization can be superficial, and rigid origami can obtain new mechanical properties by intentionally relaxing the rigid-folding kinematics. Based on numerical simulations using the bar-hinge approach and experiments, this study examines the multi-stability of a stacked Miura-origami cellular structure with different levels of facet compliance. The simulation and experiment results show that a unit cell in such cellular solid exhibits only two stable states if it follows the rigid origami kinematics; however, two more stable states are reachable if the origami facets become sufficiently compliant. Moreover, the switch between two certain stable states shows an asymmetric energy barrier, meaning that the unit cell follows fundamentally…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Cellular Mechanics and Interactions · Structural Analysis and Optimization
