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使用几何和拓扑重建对 3D 可重构曲线模块化折纸结构进行逆向设计。

Inverse design of 3D reconfigurable curvilinear modular origami structures using geometric and topological reconstructions.

机构信息

UM-SJTU Joint Institute, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, China.

School of Aeronautics and Astronautics, Shanghai Jiao Tong University, 800 Dongchuan Road, Shanghai, China.

出版信息

Nat Commun. 2022 Dec 3;13(1):7474. doi: 10.1038/s41467-022-35224-2.

Abstract

The recent development of modular origami structures has ushered in an era for active metamaterials with multiple degrees of freedom (multi-DOF). Notably, no systematic inverse design approach for 3D curvilinear modular origami structures has been reported. Moreover, very few modular origami topologies have been studied to design active metamaterials with multi-DOF. Herein, we develop an inverse design method for constructing 3D reconfigurable architected structures - we synthesize modular origami structures whose unit cells can be volumetrically mapped into a prescribed 3D curvilinear shape followed by volumetric shrinkage to construct modules. After modification of the tubular geometry, we search through all the possible geometric and topological combinations of the modular origami structures to attain the target mobility using a topological reconstruction of modules. Our inverse design using geometric and topological reconstructions can provide an effective solution to construct 3D curvilinear reconfigurable structures with multi-DOF. Our work opens a path toward 3D reconfigurable systems based on volumetric inverse design, such as 3D active metamaterials and 3D morphing devices for automotive, aerospace, and biomedical engineering applications.

摘要

最近模块化折纸结构的发展开创了具有多个自由度(多自由度)的主动超材料的新时代。值得注意的是,目前还没有用于 3D 曲线模块化折纸结构的系统反设计方法。此外,很少有模块化折纸拓扑结构被研究用于设计具有多自由度的主动超材料。在此,我们开发了一种用于构建 3D 可重构结构的反设计方法 - 我们合成了模块化折纸结构,其单元可以在体积上映射到规定的 3D 曲线形状,然后进行体积收缩以构建模块。在修改管状几何形状之后,我们通过模块的拓扑重建搜索所有可能的模块化折纸结构的几何和拓扑组合,以达到目标移动性。我们使用几何和拓扑重建的反设计可以为构建具有多自由度的 3D 曲线可重构结构提供有效的解决方案。我们的工作为基于体积反设计的 3D 可重构系统开辟了道路,例如 3D 主动超材料和用于汽车、航空航天和生物医学工程应用的 3D 变形装置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1dda/9719498/c550d9f28442/41467_2022_35224_Fig1_HTML.jpg

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