论文标题

具有可调屈曲强度的磁性弹性壳

Magneto-active elastic shells with tunable buckling strength

论文作者

Yan, Dong, Pezzulla, Matteo, Cruveiller, Lilian, Abbasi, Arefeh, Reis, Pedro M.

论文摘要

壳屈曲在许多生物结构和先进的功能材料中都是中心的,即使传统上,这种弹性不稳定被视为可以避免用于工程结构的灾难性现象。无论哪种方式,预测关键的屈曲条件仍然是长期以来的挑战。壳屈曲的亚临界性质对材料和几何缺陷赋予了极端的敏感性。因此,测得的临界负载不可避免地低于经典的理论预测。在这里,我们提出了一种强大的机制,可以动态调整壳的屈曲强度,从而利用力学和磁性之间的耦合。我们对由磁性弹性体制成的加压球形壳进行的实验证明了通过磁性致动的屈曲压力的可调性。我们开发了一个薄磁弹性壳的理论模型,该模型与实验非常吻合,从而使基本机制合理化。无量纲的磁弹性屈曲数被认为是关键的管理参数,结合了系统的几何,机械和磁性。

Shell buckling is central in many biological structures and advanced functional materials, even if, traditionally, this elastic instability has been regarded as a catastrophic phenomenon to be avoided for engineering structures. Either way, predicting critical buckling conditions remains a long-standing challenge. The subcritical nature of shell buckling imparts extreme sensitivity to material and geometric imperfections. Consequently, measured critical loads are inevitably lower than classic theoretical predictions. Here, we present a robust mechanism to dynamically tune the buckling strength of shells, exploiting the coupling between mechanics and magnetism. Our experiments on pressurized spherical shells made of a magnetorheological elastomer demonstrate the tunability of their buckling pressure via magnetic actuation. We develop a theoretical model for thin magnetic elastic shells, which rationalizes the underlying mechanism, in excellent agreement with experiments. A dimensionless magneto-elastic buckling number is recognized as the key governing parameter, combining the geometrical, mechanical, and magnetic properties of the system.

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