Reprogrammable Mechanics via Individually Switchable Bistable Unit Cells in a Prestrained Chiral Metamaterial

IF 6.4 3区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Advanced Materials Technologies Pub Date : 2024-05-30 DOI:10.1002/admt.202400474
A. B. M. Tahidul Haque, Samuele Ferracin, Jordan R. Raney
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Abstract

Architected materials exhibit unique properties and functionalities based on the geometric arrangement of their constituent materials. In most cases, these parameters are fixed, requiring that the system be redesigned and reconstructed if different properties are desired. Both stimuli-responsive materials and modular designs have been used to enable re-programmable properties in the past, but often have limitations, such as the need for a continuous application of external stimuli or power, or unwanted global morphing. In this study, a locally stable anti-tetra chiral (LSAT) metamaterial is introduced consisting of independently multistable units that can deform and change state without inducing changes in the global morphology. Adjacent cells are only weakly coupled, allowing the collective metamaterial to be switched between many different possible states. Local bistability enables re-programmable heterogeneity, such as the snapping of cells along an edge or diagonally within the architected material. Utilizing finite element analysis (FEA), the influence of key geometric parameters on the re-programmability of the metamaterials is systematically investigated. The effect of these parameters on properties such as shear stiffness, Poisson's ratio, and vibration are also investigated using experimental prototypes. This re-programmable metamaterial promises to expand the design space for mechanical systems, with potential applications in non-traditional computation, robotic actuation, and adaptive structures.

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通过预制手性超材料中的独立可切换双稳态单元单元实现可重编力学
建筑材料根据其组成材料的几何排列显示出独特的特性和功能。在大多数情况下,这些参数是固定的,如果需要不同的特性,就必须重新设计和重建系统。刺激响应材料和模块化设计在过去都曾被用于实现可重新编程的特性,但往往有其局限性,例如需要持续施加外部刺激或动力,或出现不希望出现的全局变形。在这项研究中,我们引入了一种局部稳定反四手性(LSAT)超材料,它由独立的多稳态单元组成,可以在不引起全局形态变化的情况下变形和改变状态。相邻单元之间只有微弱的耦合,从而使整体超材料可以在多种不同的可能状态之间切换。局部双稳态性实现了可重新编程的异质性,例如在结构材料内部沿边缘或对角线方向的单元折断。利用有限元分析(FEA),系统地研究了关键几何参数对超材料可重新编程性的影响。此外,还利用实验原型研究了这些参数对剪切刚度、泊松比和振动等特性的影响。这种可重新编程的超材料有望拓展机械系统的设计空间,在非传统计算、机器人驱动和自适应结构方面具有潜在的应用前景。
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来源期刊
Advanced Materials Technologies
Advanced Materials Technologies Materials Science-General Materials Science
CiteScore
10.20
自引率
4.40%
发文量
566
期刊介绍: Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.
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