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Computational wrapping: A universal method to wrap 3D-curved surfaces with nonstretchable materials for conformal devices.


ABSTRACT: This study starts from the counterintuitive question of how we can render conventional stiff, nonstretchable, and even brittle materials sufficiently conformable to fully wrap curved surfaces, such as spheres, without failure. Here, we extend the geometrical design method of computational origami to wrapping. Our computational wrapping approach provides a robust and reliable method for fabricating conformal devices for arbitrary curved surfaces with a computationally designed nonpolyhedral developable net. This computer-aided design transforms two-dimensional (2D)-based materials, such as Si wafers and steel sheets, into various targeted conformal structures that can fully wrap desired 3D structures without fracture or severe plastic deformation. We further demonstrate that our computational wrapping approach enables a design platform that can transform conventional nonstretchable 2D-based devices, such as electroluminescent lighting and flexible batteries, into conformal 3D curved devices.

SUBMITTER: Lee YK 

PROVIDER: S-EPMC7148111 | biostudies-literature | 2020 Apr

REPOSITORIES: biostudies-literature

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Computational wrapping: A universal method to wrap 3D-curved surfaces with nonstretchable materials for conformal devices.

Lee Yu-Ki YK   Xi Zhonghua Z   Lee Young-Joo YJ   Kim Yun-Hyeong YH   Hao Yue Y   Choi Hongjin H   Lee Myoung-Gyu MG   Joo Young-Chang YC   Kim Changsoon C   Lien Jyh-Ming JM   Choi In-Suk IS  

Science advances 20200410 15


This study starts from the counterintuitive question of how we can render conventional stiff, nonstretchable, and even brittle materials sufficiently conformable to fully wrap curved surfaces, such as spheres, without failure. Here, we extend the geometrical design method of computational origami to wrapping. Our computational wrapping approach provides a robust and reliable method for fabricating conformal devices for arbitrary curved surfaces with a computationally designed nonpolyhedral devel  ...[more]

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