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Controlling Acoustic and Elastic Waves With Metamaterials: Design Elements and Their Applications

机译:用超材料控制声波和弹性波:设计元素及其应用

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摘要

The purpose of this dissertation is to model, simulate and design metamaterials for underwater sound and elastic wave control. Water-based acoustic metamaterials usually suffer from low transmission due to the impedance mismatch with water; elastic metamaterials also suffer from this issue not only because of the impedance mismatch to the host medium, but also due to the multiple wave types existing simultaneously at the interface between the inclusions and the background matrix. This dissertation focuses on the theoretical modeling and computational design of broadband high transmission metamaterial devices.;Several related topics are discussed. (1) A semi-analytical method for band diagram computation of three dimensional (3D) lattices is developed in this dissertation. It has significant applications in 3D pentamode metamaterial design. (2) Acoustic transmission through gratings of parallel plates displaying anisotropic inertia is also investigated. It is found that broadband impedance matching and total acoustic transmission can be achieved if the plane wave is incident at the so-called intromission angle +/-theta i. (3) Elastic wave transmission through aligned parallel plates are studied theoretically by considering the coupling between different types of waves in elastic half-spaces and in the plates. The results are applied in the design and optimization of elastic metamaterials. (4) Elastic waves in fluid-saturated anisotropic double porosity medium of cubic symmetry is also investigated as an extension to Biot's theory of poroelasticity. A third dilatational wave is predicted in a double porosity fluid-saturated gyroid structure and demonstrated using finite element (FEM) simulations.;The second part of the dissertation focuses on several novel devices for manipulating acoustic and elastic waves. Metallic metamaterial unit cells of the hexagonal lattice type are employed to mimic the quasi-static acoustic properties of water, and to provide a certain range of index for gradient index (GRIN) metamaterial design. The advantage of such a metamaterial element is that it has in-plane isotropy and only allows one propagating mode within the frequency range of interest. (5) A flat GRIN lens is designed by tuning the unit cells to obey a modified hyperbolic secant index profile, such that a normally incident plane wave transmits through the lens efficiently and focuses at a single point. The side lobe suppression and aberration reduction abilities of the GRIN lens are demonstrated in both simulations and in underwater experiments (carried out by colleagues at the University of Texas at Austin). (6) An elastic shell based metamaterial element, which provides a wider range of index at the quasi-static regime, is adopted in the design of a conformal lens for converting a monopole source to highly directional plane wave beams. The required bulk modulus and density distributions are derived using conformal transformation acoustics mapping from a unit circle to a triangle. The mapping function is adjustable which allows energy radiating preferentially into different directions. Two collimation devices are designed using fluid-saturated shells and demonstrated using full wave FEM simulations. (7) A novel class of elastic metamaterial composed of "effective plates" are introduced to design high transmission devices for elastic waves. Several devices for focusing SV-wave, splitting P- and SV-waves, and asymmetric transmission are designed and demonstrated using full wave FEM simulations.
机译:本文的目的是对水下声和弹性波控制的超材料进行建模,仿真和设计。水基声学超材料通常会因与水的阻抗不匹配而传输率低。弹性超材料也遭受这个问题,不仅因为与基质介质的阻抗不匹配,还因为夹杂物与背景基质之间的界面同时存在多种波类型。本文主要研究宽带高传输超材料器件的理论建模和计算设计。讨论了几个相关主题。 (1)本文提出了一种用于三维(3D)晶格能带图计算的半解析方法。它在3D五态超材料设计中具有重要的应用。 (2)还研究了通过平行板光栅显示各向异性惯性的声传输。已经发现,如果平面波以所谓的入射角+/-θi入射,则可以实现宽带阻抗匹配和总声传输。 (3)通过考虑弹性半空间和板中不同类型的波之间的耦合,从理论上研究了通过对准的平行板的弹性波传输。结果被应用于弹性超材料的设计和优化。 (4)还对立方对称的流体饱和各向异性双孔隙介质中的弹性波进行了研究,以此作为Biot多孔弹性理论的扩展。在双孔隙流体饱和的回旋结构中预测了第三膨胀波,并使用有限元(FEM)模拟对其进行了演示。论文的第二部分着重介绍了几种操纵声波和弹性波的新型装置。六角格类型的金属超材料单元格用于模拟水的准静态声学特性,并为梯度指数(GRIN)超材料设计提供一定范围的指标。这种超材料元素的优点是它具有面内各向同性,并且仅允许在感兴趣的频率范围内传播一种模式。 (5)平面GRIN透镜的设计是通过调整晶胞使其服从修正的双曲正割折射率分布,从而使法向入射平面波有效地透射透镜并聚焦在单个点上。在模拟和水下实验中均证明了GRIN透镜的旁瓣抑制能力和像差降低能力(由德克萨斯大学奥斯汀分校的同事进行)。 (6)在共形透镜的设计中采用了基于弹性壳的超材料元件,该元件在准静态状态下提供了更大的折射率范围,该共形透镜用于将单极源转换为高度定向的平面光束。使用从单位圆到三角形的共形变换声学映射,可以得出所需的体积模量和密度分布。映射功能是可调的,它允许优先向不同方向辐射能量。两个准直设备是使用流体饱和壳设计的,并使用全波FEM仿真进行了演示。 (7)引入一类新型的由“有效板”组成的弹性超材料,以设计用于弹性波的高传输装置。使用全波有限元模拟设计并演示了几种用于聚焦SV波,分裂P波和SV波以及不对称传输的设备。

著录项

  • 作者

    Su, Xiaoshi.;

  • 作者单位

    Rutgers The State University of New Jersey - New Brunswick.;

  • 授予单位 Rutgers The State University of New Jersey - New Brunswick.;
  • 学科 Mechanical engineering.;Acoustics.;Mechanics.;Materials science.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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