Lee Yu-Ki, Xi Zhonghua, Lee Young-Joo, Kim Yun-Hyeong, Hao Yue, Choi Hongjin, Lee Myoung-Gyu, Joo Young-Chang, Kim Changsoon, Lien Jyh-Ming, Choi In-Suk
Department of Materials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea.
Department of Computer Science, George Mason University, Fairfax, VA 22030, USA.
Sci Adv. 2020 Apr 10;6(15):eaax6212. doi: 10.1126/sciadv.aax6212. eCollection 2020 Apr.
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.
我们如何使传统的刚性、不可拉伸甚至易碎的材料充分贴合,以完全包裹诸如球体等曲面而不发生破裂。在此,我们将计算折纸的几何设计方法扩展到包裹领域。我们的计算包裹方法提供了一种强大且可靠的方法,用于通过计算设计的非多面体可展网来制造适用于任意曲面的贴合器件。这种计算机辅助设计将基于二维(2D)的材料,如硅片和钢板,转变为各种目标贴合结构,这些结构能够完全包裹所需的三维结构而不发生断裂或严重的塑性变形。我们进一步证明,我们的计算包裹方法能够实现一个设计平台,该平台可将传统的不可拉伸的基于二维的器件,如电致发光照明和柔性电池,转变为贴合的三维曲面器件。