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Mass-stiffness substructuring of an elastic metasurface for full transmission beam steering

机译:全透射光束转向的弹性超表面的质量刚度子结构

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The metasurface concept has a significant potential due to its novel wavefront-shaping functionalities that can be critically useful for ultrasonic and solid wave-based applications. To achieve the desired functionalities, elastic metasurfaces should cover full 2π phase shift and also acquire full transmission within subwavelength scale. However, they have not been explored much with respect to the elastic regime, because the intrinsic proportionality of mass-stiffness within the continuum elastic media causes an inevitable trade-off between abrupt phase shift and sufficient transmission. Our goal is to engineer an elastic metasurface that can realize an inverse relation between (amplified) effective mass and (weakened) stiffness in order to satisfy full 2π phase shift as well as full transmission. To achieve this goal, we propose a continuum elastic metasurface unit cell that is decomposed into two substructures, namely a mass-tuning substructure with a local dipolar resonator and a stiffness-tuning substructure composed of non-resonant multiply-perforated slits. We demonstrate analytically, numerically, and experimentally that this unique substructured unit cell can satisfy the required phase shift with high transmission. The substructuring enables independent tuning of the elastic properties over a wide range of values. We use a mass-spring model of the proposed continuum unit cell to investigate the working mechanism of the proposed metasurface. With the designed metasurface consisting of substructured unit cells embedded in an aluminum plate, we demonstrate that our metasurface can successfully realize anomalous steering and focusing of in-plane longitudinal ultrasonic beams. The proposed substructuring concept is expected to provide a new principle for the design of general elastic metasurfaces that can be used to efficiently engineer arbitrary wave profiles.
机译:超表面概念由于其新颖的波前成形功能而具有巨大的潜力,该功能对于基于超声波和基于固体波的应用至关重要。为了实现所需的功能,弹性超表面应覆盖2π的完整相移,并且还应在亚波长范围内获得完整的透射率。但是,关于弹性状态还没有对其进行太多研究,因为连续弹性介质中质量刚度的内在比例性导致了突然相移和足够透射之间不可避免的折衷。我们的目标是设计一种弹性的超表面,该表面可以实现(放大的)有效质量与(减弱的)刚度之间的逆关系,从而满足完全2π相移以及完全透射的要求。为了实现这一目标,我们提出了一个连续统的弹性超表面单元,该单元被分解为两个子结构,即具有局部偶极共振器的质量调谐子结构和由非共振多穿孔缝隙组成的刚度调谐子结构。我们通过分析,数值和实验证明,这种独特的亚结构单位晶格可以满足所需的高传输相移。通过这种子结构,可以在广泛的值范围内独立调整弹性特性。我们使用提出的连续体单元格的质量弹簧模型来研究提出的超表面的工作机制。通过设计的由嵌入铝板中的亚结构晶胞组成的超颖表面,我们证明了超颖表面可以成功实现面内纵向超声波束的异常操纵和聚焦。预期提出的子结构概念将为一般弹性超表面的设计提供新原理,可用于有效地设计任意波轮廓。

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