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自组装的屈曲、弯曲和凸起梁。

Self-Ordering of Buckling, Bending, and Bumping Beams.

机构信息

Department of Mechanical Engineering, Boston University, Boston, Massachusetts 02215, USA.

School of Mathematics, Monash University, Clayton Victoria 3800, Australia.

出版信息

Phys Rev Lett. 2023 Apr 7;130(14):148201. doi: 10.1103/PhysRevLett.130.148201.

Abstract

A collection of thin structures buckle, bend, and bump into each other when confined. This contact can lead to the formation of patterns: hair will self-organize in curls; DNA strands will layer into cell nuclei; paper, when crumpled, will fold in on itself, forming a maze of interleaved sheets. This pattern formation changes how densely the structures can pack, as well as the mechanical properties of the system. How and when these patterns form, as well as the force required to pack these structures is not currently understood. Here we study the emergence of order in a canonical example of packing in slender structures, i.e., a system of parallel confined elastic beams. Using tabletop experiments, simulations, and standard theory from statistical mechanics, we predict the amount of confinement (growth or compression) of the beams that will guarantee a global system order, which depends only on the initial geometry of the system. Furthermore, we find that the compressive stiffness and stored bending energy of this metamaterial are directly proportional to the number of beams that are geometrically frustrated at any given point. We expect these results to elucidate the mechanisms leading to pattern formation in these kinds of systems and to provide a new mechanical metamaterial, with a tunable resistance to compressive force.

摘要

当受到限制时,一系列薄结构会弯曲、碰撞。这种接触会导致模式的形成:头发会自行卷曲;DNA 链会分层到细胞核中;纸张褶皱时,会折叠成相互交错的薄片。这种模式的形成改变了结构的密集程度以及系统的机械性能。目前还不清楚这些模式是如何形成的,以及形成这些模式所需的力。在这里,我们研究了在细长结构的典型包装示例中,即平行约束弹性梁系统中,秩序的出现。我们使用桌面实验、模拟和统计力学的标准理论,预测了将保证全局系统有序的梁的约束量(增长或压缩),这仅取决于系统的初始几何形状。此外,我们发现这种超材料的压缩刚度和存储弯曲能与在任何给定点受到几何约束的梁的数量成正比。我们希望这些结果能够阐明导致此类系统中模式形成的机制,并提供一种具有可调节抗压能力的新型机械超材料。

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