Yang Nan, Zhang Mingkai, Zhu Rui, Niu Xiao-Dong
Intelligent Manufacturing Key Laboratory of Ministry of Education, Shantou University, Shantou, 515063, China.
Key Laboratory of Dynamics and Control of Flight Vehicle, Ministry of Education, School of Aerospace Engineering, Beijing Institute of Technology, Beijing, 100081, China.
Sci Rep. 2019 Dec 11;9(1):18812. doi: 10.1038/s41598-019-55222-7.
A new type of modular metamaterials with reprogrammable mechanical properties is proposed based on the multistability in decoupled units. This metamaterial consists of periodically arranged foldable obelisk-like (FO) units, and each unit has three interchangeable states: two different soft states and a stiff state. Therefore, such metamaterial can possess various mechanical properties with different state combinations of units. Both theoretical and experimental investigations are conducted to understand the multistability in one unit and the reprogrammed mechanical properties in a two-dimensional tessellation. Additionally, we investigate the inverse question that whether the identical force response can be generated with different geometrical design of the metamaterial and propose a way to build 3D metamaterials with intended architectures. This work establishes general principles for designing mechanical metamaterials with independently transformable modules, and opens new avenues for various potential applications such as: self-locking materials, impact mitigation and stiffness transformation materials.
基于解耦单元中的多稳定性,提出了一种具有可重新编程机械性能的新型模块化超材料。这种超材料由周期性排列的可折叠方尖碑状(FO)单元组成,每个单元具有三种可互换状态:两种不同的软状态和一种硬状态。因此,这种超材料可以通过单元的不同状态组合拥有各种机械性能。进行了理论和实验研究,以了解单个单元中的多稳定性以及二维镶嵌中的重新编程机械性能。此外,我们研究了一个反问题,即通过超材料的不同几何设计是否可以产生相同的力响应,并提出了一种构建具有预期结构的三维超材料的方法。这项工作建立了设计具有独立可转换模块的机械超材料的一般原则,并为各种潜在应用开辟了新途径,如自锁材料、冲击缓解和刚度转换材料。