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Instability-Induced Pattern Transformation in Soft Metamaterial with Hexagonal Networks for Tunable Wave Propagation

机译:具有六边形网络的软超材料中不稳定性诱导的模式转换用于可调谐波的传播

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摘要

Instability-induced pattern transformations of the architectured multi-phase soft metamaterial under bi-axial compression were explored. The soft metamaterial is composed of two phases: a soft matrix and a reinforcing hexagonal network embedded in the matrix. Equi-biaxial loading is found to induce both micro- and macro- instabilities in the networked architecture. Two types of instability patterns were observed, dependent upon the architecture geometry and the material combination. The critical strain for triggering instability and the two resulting types of patterns was derived, and a theoretical criterion for the transition between the two patterns was determined. Type I patterns retain the original periodicity of the architecture but wrinkles the network walls whereas Type II patterns transform the overall periodicity of the architecture while bending the network walls. Elastic wave propagation analysis was performed for the two distinct patterns under both stressed and stress-free conditions: a change in band gaps is found for both instability-induced pattern transformations, but differs for each type due to their dramatic difference in structure transformation (i.e. Type I wall wrinkling vs. Type II periodicity switching). The distinguished mechanical behavior and the rich properties of this category of multi-phase soft metamaterial can be used to design new smart materials with switchable functionalities controllable by deformation.
机译:探索了在双轴压缩下不稳定性引起的结构化多相软超材料的模式转变。软超材料由两个阶段组成:软基质和嵌入基质中的增强六角形网络。发现等双轴加载会引起网络架构中的微观和宏观不稳定性。观察到两种类型的不稳定模式,具体取决于体系结构的几何形状和材料组合。得出了触发不稳定性的临界应变和两种结果模式,并确定了两种模式之间过渡的理论标准。 I型图案保留了体系结构的原始周期性,但使网络壁皱了皱纹,而II型图案则在弯曲网络壁的同时改变了体系结构的总体周期性。在应力和无应力条件下,对两种不同的模式进行了弹性波传播分析:两种不稳定性引起的模式转换都发现了带隙的变化,但是由于结构转换的显着差异,每种类型的带隙都不同。 I型壁皱与II型周期切换)。此类多相软超材料的出色机械性能和丰富特性可用于设计具有可变形控制的可切换功能的新型智能材料。

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