论文标题

基于反馈的拓扑声学超材料中的弯曲声梁的实时转向

Real-Time Steering of Curved Sound Beams in a Feedback-based Topological Acoustic Metamaterial

论文作者

Sirota, Lea, Sabsovich, Daniel, Lahini, Yoav, Ilan, Roni, Shokef, Yair

论文摘要

我们提出了基于反馈的拓扑声学超材料的概念,作为在游离二维空间中沿任意弯曲路径沿任意弯曲路径实现自主和主动指导的工具。超材料的构件是声音传感器,嵌入了平板波导中。传感器通过通过预编程控制器处理实时压力场测量值来在闭环中生成所需的分散曲线。特别是,可以对超材料进行编程以表现出量子拓扑波现象的类比,从而实现非常规且异常健壮的声束指导。例如,我们通过使用共处的压力反馈来实现量子谷大厅的效应,这是整个波导上的交替声阻抗模式。该模式通过不同形状的人工轨迹遍历,这些轨迹是可以实时重新配置的。由于拓扑保护,板之间的声波仍位于轨迹上,并且不会因设计中的尖角或瑕疵而后射击。基于反馈的设计可用于实现超材料中的任意物理相互作用,包括非本地,非线性,时间依赖性或非重点耦合,为在同一可重编程平台上引导新的非常规的声波引导铺平了道路。然后,我们提出了一种非集中对照算法,该算法模拟了另一种量子效应,从而使声梁单向。

We present the concept of a feedback-based topological acoustic metamaterial as a tool for realizing autonomous and active guiding of sound beams along arbitrary curved paths in free two-dimensional space. The metamaterial building blocks are acoustic transducers, embedded in a slab waveguide. The transducers generate a desired dispersion profile in closed-loop by processing real-time pressure field measurements through preprogrammed controllers. In particular, the metamaterial can be programmed to exhibit analogies of quantum topological wave phenomena, which enables unconventional and exceptionally robust sound beam guiding. As an example, we realize the quantum valley Hall effect by creating, using a collocated pressure feedback, an alternating acoustic impedance pattern across the waveguide. The pattern is traversed by artificial trajectories of different shapes, which are reconfigurable in real-time. Due to topological protection, the sound waves between the plates remain localized on the trajectories, and do not back-scatter by the sharp corners or imperfections in the design. The feedback-based design can be used to realize arbitrary physical interactions in the metamaterial, including non-local, nonlinear, time-dependent, or non-reciprocal couplings, paving the way to new unconventional acoustic wave guiding on the same reprogrammable platform. We then present a non-collocated control algorithm, which mimics another quantum effect, rendering the sound beams uni-directional.

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