Zhong Jia-Xin, Ji Jun, Xia Xiaoxing, Heo Hyeonu, Jing Yun
Graduate Program in Acoustics, College of Engineering, The Pennsylvania State University, University Park, PA 16802.
Lawrence Livermore National Laboratory, Livermore, CA 94550.
Proc Natl Acad Sci U S A. 2025 Mar 25;122(12):e2408975122. doi: 10.1073/pnas.2408975122. Epub 2025 Mar 17.
Delivering audible content to a targeted listener without disturbing others is paramount in audio engineering. However, achieving this goal has long been challenging due to the diffraction of low-frequency (long-wavelength) audio waves in linear acoustics. Here, we introduce an approach for creating remote audio spots, dubbed audible enclaves, by harnessing the local nonlinear interaction of two self-bending ultrasonic beams with distinct spectra. The self-bending ultrasonic beams created by acoustic metasurfaces, though inaudible, can bypass obstacles such as human heads. At their intersection behind obstacles, highly localized audible enclaves are formed due to the local nonlinear interactions. Additionally, we demonstrate the ultrabroadband capabilities of our metasurface-based implementation both numerically and experimentally, spanning from 125 Hz to 4 kHz (6 octave bands), covering the majority of the audible frequency range. The practicality of our proposed technique is underscored by its compact implementation size (0.16 m, equivalent to 0.06 wavelengths at 125 Hz), as well as its robust performance under wideband transient audio signal excitation and in a common room with reverberations. Our proposed audible enclaves hold significant potential for various applications in advanced audio engineering, including private speech communications, immersive spatial audio reproduction, and high-resolution sound/quiet zone control.
在音频工程中,向目标听众传递可听内容而不干扰他人至关重要。然而,由于线性声学中低频(长波长)声波的衍射,长期以来实现这一目标一直具有挑战性。在此,我们介绍一种通过利用两个具有不同频谱的自弯曲超声波束的局部非线性相互作用来创建远程音频点(称为可听飞地)的方法。由声学超表面产生的自弯曲超声波束虽然听不见,但可以绕过诸如人头等障碍物。在障碍物后面它们的交叉处,由于局部非线性相互作用会形成高度局部化的可听飞地。此外,我们通过数值和实验证明了基于超表面的实现方式的超宽带能力,其频率范围从125赫兹到4千赫兹(6个倍频程频段),覆盖了大部分可听频率范围。我们提出的技术的实用性体现在其紧凑的实现尺寸(0.16米,相当于125赫兹时的0.06个波长),以及在宽带瞬态音频信号激励下和在有混响的普通房间中的稳健性能。我们提出的可听飞地在先进音频工程的各种应用中具有巨大潜力,包括私人语音通信、沉浸式空间音频再现以及高分辨率声音/安静区域控制。