Dynamic Folding of Origami By Exploiting Asymmetric Multi-Stability
Sahand Sadeghi, Suyi Li

TL;DR
This paper presents a novel method for rapid, reversible origami folding by leveraging resonance excitation and asymmetric multi-stability, enabling controlled shape transitions without responsive materials.
Contribution
It introduces a dynamic model and active control strategy to achieve uni-directional folding in bi-stable origami through resonance, expanding potential applications in reconfigurable systems.
Findings
Resonance excitation can induce rapid folding between stable states.
Asymmetric multi-stability enables low-actuation reversible folding.
Active feedback control ensures robust, uni-directional shape change.
Abstract
In this study, we examine a rapid and reversible origami folding method by exploiting a combination of resonance excitation, asymmetric multi-stability, and active control. The underlying idea is that, by harmonically exciting a multi-stable origami at its resonance frequencies, one can induce rapid folding between its different stable equilibria without the need for using responsive materials. To this end, we use a bi-stable water-bomb base as an archetypal example. Via numerical simulation based on a new dynamic model and experimental testing, we show that the inherent asymmetry of waterbomb bi-stability can enable dynamic folding with relatively low actuation requirements. For example, if the water-bomb initially settles at its "weak" stable state, one can use a base excitation to induce the intra-well resonance. As a result, the origami would fold and remain at the other "strong"…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Structural Analysis and Optimization · Advanced Sensor and Energy Harvesting Materials
