Soft Kirigami Composites for Form‐Finding of Fully Flexible Deployables

Author:

Zavodnik Jan1,Wang Yunbo2,Yan Wenzhong2,Brojan Miha1,Jawed Mohammad Khalid2ORCID

Affiliation:

1. Faculty of Mechanical Engineering Laboratory for Nonlinear Mechanics University of Ljubljana Aškerčeva 6 Ljubljana SI‐1000 Slovenia

2. Los Angeles Department of Mechanical and Aerospace Engineering University of California 420 Westwood Plaza Los Angeles CA 90024 USA

Abstract

AbstractA new class of thin flexible structures is introduced that morph from flat into prescribed 3D shapes through strain mismatch between layers of a composite plate. To achieve control over the target shape, two different concepts are coupled. First, motivated by biological growth, strain mismatch is applied between the flat composite layers to transform it into a 3D shape. Depending on the amount of the applied strain mismatch, the transformation involves buckling into one of the available finite number of deformation modes. Second, inspired by kirigami, portions of the material are removed from one of the layers according to a specific pattern. This dramatically increases the number of possible 3D shapes and allows us to attain specific topologies. An experimental apparatus that allows precise control of the strain mismatch is devised. An inverse problem is posed, where starting from a given target shape, the physical parameters that make these shapes possible are determined. To show how the concept works, it focuses on circular composite plates and designs a kirigami pattern that yields a hemispherical structure. The analysis combines a theoretical approach with numerical simulations and physical experiments to understand and predict the shape transition from 2D to 3D. The tools developed here can be extended to attain arbitrary 3D shapes. The initially flat shape suggests that conventional additive manufacturing techniques can be used to functionalize the soft kirigami composite to fabricate, for example, deployable 3D structures, smart skins, and soft electromagnetic metasurfaces.

Funder

National Science Foundation

Javna Agencija za Raziskovalno Dejavnost RS

Publisher

Wiley

Subject

Industrial and Manufacturing Engineering,Mechanics of Materials,General Materials Science

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