Topology optimization of anisotropic broadband double-negative elastic metamaterials

IF 5 2区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Dong Hao-Wen , Zhao Sheng-Dong , Wang Yue-Sheng , Zhang Chuanzeng
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引用次数: 58

Abstract

As the counterpart of electromagnetic and acoustic metamaterials, elastic metamaterials are artificial periodic elastic composite materials offering the possibility to manipulate elastic wave propagation in the subwavelength scale through different mechanisms. For the promising superlensing in the medical ultrasonic detection, double-negative metamaterials possessing the negative effective mass density and elastic modulus simultaneously can be utilized as the ideal superlens for breaking the diffraction limit. In this paper, we present a topology optimization scheme to design the two-dimensional (2D) single-phase anisotropic elastic metamaterials with broadband double-negative effective material properties and demonstrate the superlensing effect at the deep-subwavelength scale. We also discuss the impact of several design parameters adopted in the objective function and constraints on the optimized results. Unlike all previously reported mechanisms, the present optimized structures exhibit the novel quadrupolar or multipolar resonances for the negative effective mass density and negative effective elastic modulus. In addition, negative refraction of the transverse waves in a single-phase material is observed. Most optimized structures in this paper can serve as the anisotropic zero-index metamaterials for the longitudinal or transverse waves at a certain frequency. The cloaking effect is demonstrated for both the longitudinal and transverse waves. Moreover, with the particular constraints in the optimization procedure, a super-anisotropic metamaterial exhibiting the double-negative and hyperbolic dispersions in two principal directions within two different frequency ranges is obtained. The developed optimization scheme provides a robust computational tool for negative-index engineering of elastic metamaterials and may guide the design and optimization of other types of metamaterials, including the electromagnetic and acoustic metamaterials. The unusual properties of our optimized structures can inspire new ideas and novel applications including the low-frequency vibration attenuation, flat lens and ultrasonography for elastic waves.

各向异性宽带双负弹性超材料的拓扑优化
弹性超材料是一种人造周期性弹性复合材料,可以作为电磁和声学超材料的对应材料,通过不同的机制来控制弹性波在亚波长尺度上的传播。对于医用超声检测中很有前途的超透镜,可以利用同时具有负有效质量密度和负弹性模量的双负超材料作为突破衍射极限的理想超透镜。在本文中,我们提出了一种拓扑优化方案来设计具有宽带双负有效材料特性的二维(2D)单相各向异性弹性超材料,并在深亚波长尺度上展示了超透镜效应。讨论了目标函数和约束条件中所采用的几个设计参数对优化结果的影响。与所有先前报道的机制不同,目前优化的结构表现出负有效质量密度和负有效弹性模量的新型四极或多极共振。此外,还观察到横波在单相材料中的负折射。本文优化的结构在一定频率下可作为纵波或横波的各向异性零折射率超材料。对纵波和横波都证明了隐身效应。此外,在优化过程的特定约束条件下,得到了在两个不同频率范围内,在两个主方向上具有双负和双曲色散的超各向异性超材料。所开发的优化方案为弹性超材料的负折射率工程提供了强大的计算工具,并可指导其他类型的超材料的设计和优化,包括电磁和声学超材料。我们优化的结构的不同寻常的特性可以激发新的想法和新的应用,包括低频振动衰减,平面透镜和弹性波的超声成像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of The Mechanics and Physics of Solids
Journal of The Mechanics and Physics of Solids 物理-材料科学:综合
CiteScore
9.80
自引率
9.40%
发文量
276
审稿时长
52 days
期刊介绍: The aim of Journal of The Mechanics and Physics of Solids is to publish research of the highest quality and of lasting significance on the mechanics of solids. The scope is broad, from fundamental concepts in mechanics to the analysis of novel phenomena and applications. Solids are interpreted broadly to include both hard and soft materials as well as natural and synthetic structures. The approach can be theoretical, experimental or computational.This research activity sits within engineering science and the allied areas of applied mathematics, materials science, bio-mechanics, applied physics, and geophysics. The Journal was founded in 1952 by Rodney Hill, who was its Editor-in-Chief until 1968. The topics of interest to the Journal evolve with developments in the subject but its basic ethos remains the same: to publish research of the highest quality relating to the mechanics of solids. Thus, emphasis is placed on the development of fundamental concepts of mechanics and novel applications of these concepts based on theoretical, experimental or computational approaches, drawing upon the various branches of engineering science and the allied areas within applied mathematics, materials science, structural engineering, applied physics, and geophysics. The main purpose of the Journal is to foster scientific understanding of the processes of deformation and mechanical failure of all solid materials, both technological and natural, and the connections between these processes and their underlying physical mechanisms. In this sense, the content of the Journal should reflect the current state of the discipline in analysis, experimental observation, and numerical simulation. In the interest of achieving this goal, authors are encouraged to consider the significance of their contributions for the field of mechanics and the implications of their results, in addition to describing the details of their work.
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