Du Jiayuan, Luo Yuezhou, Zhao Xinyu, Sun Xiaodong, Song Yanan, Hu Xinhua
Department of Materials Science, Key Laboratory of Micro- and Nano-Photonic Structures (Ministry of Education), and Laboratory of Advanced Materials, Fudan University, Shanghai, 200433, China.
Sci Rep. 2021 Mar 12;11(1):5829. doi: 10.1038/s41598-021-84986-0.
The recent advent of acoustic metamaterials offers unprecedented opportunities for sound controlling in various occasions, whereas it remains a challenge to attain broadband high sound absorption and free air flow simultaneously. Here, we demonstrated, both theoretically and experimentally, that this problem can be overcome by using a bilayer ventilated labyrinthine metasurface. By altering the spacing between two constituent single-layer metasurfaces and adopting asymmetric losses in them, near-perfect (98.6%) absorption is achieved at resonant frequency for sound waves incident from the front. The relative bandwidth of absorption peak can be tuned in a wide range (from 12% to 80%) by adjusting the open area ratio of the structure. For sound waves from the back, the bilayer metasurface still serves as a sound barrier with low transmission. Our results present a strategy to realize high sound absorption and free air flow simultaneously, and could find applications in building acoustics and noise remediation.
声学超材料的近期出现为各种场合的声音控制提供了前所未有的机会,然而,要同时实现宽带高声吸收和自由气流仍然是一个挑战。在此,我们通过理论和实验证明,使用双层通风迷宫式超表面可以克服这个问题。通过改变两个组成单层超表面之间的间距并在其中采用不对称损耗,对于从正面入射的声波,在共振频率下可实现近完美(98.6%)的吸收。通过调整结构的开口面积比,吸收峰的相对带宽可以在很宽的范围内(从12%到80%)进行调谐。对于来自背面的声波,双层超表面仍然作为具有低透射率的声屏障。我们的结果提出了一种同时实现高声吸收和自由气流的策略,并可在建筑声学和噪声修复中找到应用。