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Buckling-induced encapsulation of structured elastic shells under pressure

机译:在压力下结构化弹性壳的屈曲诱导封装

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摘要

We introduce a class of continuum shell structures, the Buckliball, which undergoes a structural transformation induced by buckling under pressure loading. The geometry of the Buckliball comprises a spherical shell patterned with a regular array of circular voids. In order for the pattern transformation to be induced by buckling, the possible number and arrangement of these voids are found to be restricted to five specific configurations. Below a critical internal pressure, the narrow ligaments between the voids buckle, leading to a cooperative buckling cascade of the skeleton of the ball. This ligament buckling leads to closure of the voids and a reduction of the total volume of the shell by up to 54%, while remaining spherical, thereby opening the possibility of encapsulation. We use a combination of precision desktop-scale experiments, finite element simulations, and scaling analyses to explore the underlying mechanics of these foldable structures, finding excellent qualitative and quantitative agreement. Given that this folding mechanism is induced by a mechanical instability, our Buckliball opens the possibility for reversible encapsulation, over a wide range of length scales.
机译:我们介绍了一类连续壳结构,即Buckliball,它在压力载荷作用下会因屈曲而发生结构转变。 Buckliball的几何形状包括一个球形外壳,该外壳上有规则的圆形空隙阵列。为了通过屈曲引起图案变换,发现这些空隙的可能数量和布置被限制为五个特定的构造。在临界内部压力以下,空隙之间的狭窄韧带会弯曲,从而导致球体骨架协同弯曲。韧带弯曲导致空隙的封闭,壳体的总体积减少多达54%,同时保持球形,从而打开了封装的可能性。我们结合使用了精确的桌面规模实验,有限元模拟和缩放分析,以探索这些可折叠结构的基本力学,从而找到出色的定性和定量一致性。由于这种折叠机制是由机械不稳定引起的,因此我们的Buckliball在广泛的长度范围内为可逆封装提供了可能性。

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