Negative Refraction of Mixing Waves in Nonlinear Elastic Wave Metamaterials

IF 1.8 3区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY Journal of Elasticity Pub Date : 2024-03-22 DOI:10.1007/s10659-024-10060-1
Zi-Hao Miao, Yi-Ze Wang
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Abstract

Nonlinear effects can enrich the propagation of elastic waves in mechanical metamaterials, which makes it possible to extend classical phenomena and functions in linear systems to nonlinear ones. In this work, rather than monochromatic waves in similar linear structures, the negative refraction is realized by mixing waves which are generated in nonlinear elastic wave metamaterials. Based on the stiffness matrix and plane wave expansion methods, dispersion curves of in–plane modes resulting from the collinear and non–linear mixings of two longitudinal waves are calculated. In the frequency spectrum, two propagating modes coalesce at exceptional points due to the coupling of in–plane modes, and those points at which the refraction type changes are also exceptional ones. Two kinds of negative refraction can be found in the mixing modes near exceptional points, but each of them needs to be induced in a specific configuration. Moreover, experiments are performed to support the pure negative refraction and beam splitting of the nonlinear elastic waves. Particularly, the parallel configuration is able to separate and extract the nonlinear mode when the single–mode negative refraction occurs, which shows the possibility to design elastic wave device by the negative refraction of nonlinear mixing waves.

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非线性弹性波超材料中混合波的负折射
非线性效应可以丰富弹性波在机械超材料中的传播,从而有可能将线性系统中的经典现象和功能扩展到非线性系统中。在这项研究中,与类似线性结构中的单色波不同,负折射是通过在非线性弹性波超材料中产生的混合波来实现的。根据刚度矩阵和平面波展开方法,计算了两个纵波的共线和非线性混合产生的平面内模式的频散曲线。在频谱中,由于面内模态的耦合,两个传播模态在特殊点上聚合,而折射类型发生变化的点也是特殊点。在特殊点附近的混合模式中可以发现两种负折射,但每种负折射都需要在特定的配置中诱导。此外,实验还支持非线性弹性波的纯负折射和分束。特别是当单模负折射发生时,平行构型能够分离和提取非线性模式,这表明利用非线性混合波的负折射设计弹性波装置是可行的。
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来源期刊
Journal of Elasticity
Journal of Elasticity 工程技术-材料科学:综合
CiteScore
3.70
自引率
15.00%
发文量
74
审稿时长
>12 weeks
期刊介绍: The Journal of Elasticity was founded in 1971 by Marvin Stippes (1922-1979), with its main purpose being to report original and significant discoveries in elasticity. The Journal has broadened in scope over the years to include original contributions in the physical and mathematical science of solids. The areas of rational mechanics, mechanics of materials, including theories of soft materials, biomechanics, and engineering sciences that contribute to fundamental advancements in understanding and predicting the complex behavior of solids are particularly welcomed. The role of elasticity in all such behavior is well recognized and reporting significant discoveries in elasticity remains important to the Journal, as is its relation to thermal and mass transport, electromagnetism, and chemical reactions. Fundamental research that applies the concepts of physics and elements of applied mathematical science is of particular interest. Original research contributions will appear as either full research papers or research notes. Well-documented historical essays and reviews also are welcomed. Materials that will prove effective in teaching will appear as classroom notes. Computational and/or experimental investigations that emphasize relationships to the modeling of the novel physical behavior of solids at all scales are of interest. Guidance principles for content are to be found in the current interests of the Editorial Board.
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