Deformation characteristics and mechanical properties of a non-rigid square-twist origami structure with rotational symmetry
Shixi Zang, Jiayao Ma, Yan Chen

TL;DR
This study explores the deformation behavior and mechanical properties of a non-rigid square-twist origami structure with rotational symmetry, combining experiments and modeling to enable programmable mechanical metamaterials.
Contribution
It introduces a detailed deformation analysis and an empirical model linking geometric parameters to mechanical responses of non-rigid origami structures.
Findings
Identified a three-stage deformation process: tightening, unlocking, flattening.
Developed an empirical model predicting energy, force, and stiffness based on structure parameters.
Validated the model with experiments, enabling programmable mechanical properties.
Abstract
Non-rigid origami patterns could provide more versatile performance than their rigid counterparts in the design of mechanical metamaterials owing to the simultaneous deformation of facets and creases, but their complex deformation modes make quantitative characterization and programmability of mechanical properties a challenging task. Here, we investigated the tensile behavior of a non-rigid square-twist origami structure with rotational symmetry by combining biaxial tension experiments and finite element modeling. A three-stage deformation process, including tightening, unlocking, and flattening, of the structure was unveiled through a detailed analysis of facet distortion and crease rotation, and the relationship between structure deformation and several key features in the energy, force, and stiffness curve was obtained. Based on the analysis, an empirical model was built to…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Structural Analysis and Optimization · Advanced Sensor and Energy Harvesting Materials
