He Jian, Wang Yaohui, Shen Zhengquan, Xia Liang, Xiong Yi
School of System Design and Intelligent Manufacturing, Southern University of Science and Technology, Shenzhen 518055, China.
Dyson School of Design Engineering, Imperial College London, Exhibition Road, London, SW7 2DB, UK.
Mater Horiz. 2024 Dec 9;11(24):6371-6380. doi: 10.1039/d4mh00906a.
Mechanical metamaterials with integrated functionalities can simultaneously fulfill multiple design requirements through design consolidation, which is highly desirable for weight-sensitive and space-constrained applications. Despite the extensive research on multistable metamaterials, their integration with other functionalities, such as vibration isolation, sensing, and hierarchical energy absorption, remains largely untapped. Here, we report a novel class of mechanical metamaterial featuring programmable multistability and function-oriented multitransition behaviors. This integration is realized through a novel assembly-based design concept that incorporates interchangeable contact block (CB) units into a classical bistable structure. By varying the position, number, and shape of CB units, we can obtain a spectrum of function-oriented transition behaviors, offering reconfigurability through unit replacement. To ensure the rational design of CB, we employ a comprehensive approach that combines theoretical analysis, numerical simulations, and experimental validation to investigate the nonlinear behaviors of these assembled metamaterials, including snap-through instability and contact behaviors. Additionally, we explore design strategies such as 2D arraying and 3D extension to achieve programmable multistability. Furthermore, we demonstrate the versatility of these assembled mechanical metamaterials by constructing digital materials with scalability, reconfigurability, and multidirectionality. The proposed assembly-based design concept breaks new ground in engineering multistable structures with integrated functionalities for deployable structures, robotics, and beyond.
具有集成功能的机械超材料可以通过设计整合同时满足多种设计要求,这对于对重量敏感和空间受限的应用来说是非常理想的。尽管对多稳态超材料进行了广泛研究,但它们与其他功能(如隔振、传感和分层能量吸收)的整合在很大程度上仍未得到开发。在此,我们报告了一类新型的机械超材料,其具有可编程的多稳态和面向功能的多转变行为。这种整合是通过一种基于新颖组装的设计概念实现的,该概念将可互换的接触块(CB)单元纳入经典的双稳态结构中。通过改变CB单元的位置、数量和形状,我们可以获得一系列面向功能的转变行为,通过单元替换提供可重构性。为确保CB的合理设计,我们采用了一种综合方法,将理论分析、数值模拟和实验验证相结合,以研究这些组装超材料的非线性行为,包括快速翻转不稳定性和接触行为。此外,我们探索了诸如二维阵列和三维扩展等设计策略以实现可编程的多稳态。此外,我们通过构建具有可扩展性、可重构性和多方向性的数字材料来展示这些组装机械超材料的多功能性。所提出的基于组装的设计概念在为可展开结构、机器人技术及其他领域设计具有集成功能的多稳态结构方面开辟了新天地。