Hysteretic self-folding of micro-scale polymer origami films
POSTER
Abstract
Origami-inspired self-folding materials have attracted interest for the design of actuators and remotely deployable devices. While well-established geometric rules have been used to create rigidly self-foldable origami structures, the behavior of non-rigidly foldable crease patterns remains incompletely understood. In particular, understanding the relationship between crease geometry and the resulting elastic energy barrier remains a central challenge. Here, we describe a simple model system based on the well-known square twist folding pattern to explore how self-folding structures overcome such energy barriers, and the resulting hysteresis in the folding/unfolding behavior. We show that the magnitude of the hysteresis can be tuned by variations in the plane angle characterizing the crease pattern, as well as by selectively weakening the panel diagonals to reduce the energy cost of bending. These results provide insights into geometrically-controlled energy barriers in non-rigidly foldable origami and design rules for the construction of bistable self-folding systems.
Authors
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Jun-Hee Na
University of Massachusetts Amherst
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Jesse Silverberg
Cornell University
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Arthur Evans
University of Massachusetts Amherst, Univ of Mass - Amherst
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Christian Santangelo
University of Massachusetts Amherst, University of Massachusetts, Department of Physics, University of Massachusetts, Amherst, Physics, UMass Amherst, Univ of Mass - Amherst
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Thomas Hull
Western New England University, Maths, Western New England University
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Itai Cohen
Cornell University, Physics Department, Cornell University, Physics, Cornell Univ.
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Ryan Hayward
UMASS AMHERST, University of Massachusetts Amherst, Univ of Mass - Amherst, Polymer Science and Engineering, UMass Amherst