将扭结和折痕整合在一起可实现元带的可调折叠

IF 17.3 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Matter Pub Date : 2024-05-15 DOI:10.1016/j.matt.2024.04.031
Weicheng Huang, Tian Yu, K. Jimmy Hsia, Sigrid Adriaenssens, Mingchao Liu
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引用次数: 0

摘要

可折叠结构的应用多种多样。将薄结构折叠成紧凑形状涉及非线性力学和拓扑学的相互作用。在这项研究中,我们采用离散模型、理论分析和桌面实验,系统地研究了环形弹性带通过平面内扭结和平面外折痕的几何非线性折叠过程。我们发现,扭结通过超临界分岔引发连续折叠,而折痕则通过亚临界分岔引发突然折断。我们还获得了主曲线,该曲线概括了具有不同数量折痕和折皱的带的能量景观。通过整合扭结和折痕,可以创建一个 "元带",它显示了可调的折叠行为,在所构建的能量图的指导下,通过对平面内和平面外角度的战略性工程设计,可以从连续过渡到折断,反之亦然。作为折叠的产物,我们展示了通过动态折叠实现的由折断引起的振动,以及具有鞍状构型的元带的多态性及其转变。
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Integration of kinks and creases enables tunable folding in meta-ribbons

Foldable structures find diverse applications. Folding of thin structures into compact shapes involves the interplay of nonlinear mechanics and topology. In this study, we employ discrete models, theoretical analysis, and tabletop experiments to systematically investigate the geometrically nonlinear folding process of ring-shape elastic ribbons through in-plane kinks and out-of-plane creases. We find that kinks initiate continuous folding through supercritical bifurcation, while creases trigger abrupt snapping via subcritical bifurcation. Master curves that summarize energy landscapes for ribbons with varying numbers of kinks and creases are obtained. By integrating kinks and creases, a “meta-ribbon” can be created, which shows the tunable folding behavior, transitioning from continuous to snapping, or vice versa, by strategically engineering the in-plane and out-of-plane angles guided by the constructed energy map. As a product of folding, we demonstrate the snapping-induced vibration accomplished with dynamic folding, as well as the multistability of meta-ribbons with saddle-like configurations and their transformation.

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来源期刊
Matter
Matter MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
26.30
自引率
2.60%
发文量
367
期刊介绍: Matter, a monthly journal affiliated with Cell, spans the broad field of materials science from nano to macro levels,covering fundamentals to applications. Embracing groundbreaking technologies,it includes full-length research articles,reviews, perspectives,previews, opinions, personnel stories, and general editorial content. Matter aims to be the primary resource for researchers in academia and industry, inspiring the next generation of materials scientists.
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