Hu Peizhou, Zhao Jingbo, Liu Hong, Zhang Xiaosheng, Zhang Guangjun, Yao Hong
Air Force Engineering University, Xi'an 710000, China.
Materials (Basel). 2024 Sep 12;17(18):4475. doi: 10.3390/ma17184475.
This paper presents a type of acoustic metamaterial that combines a labyrinth channel with a Helmholtz cavity and a thin film. The labyrinth-opening design and thin-film combination contribute to the metamaterial's exceptional sound-insulation performance. After comprehensive research, it is observed that in the frequency range of 20-1200 Hz, this acoustic metamaterial exhibits multiple sound-insulation peaks, showing a high overall sound-insulation quality. Specifically, the first sound-insulation peak is 26.3 Hz, with a bandwidth of 13 Hz and giving a transmission loss of 56.5 dB, showing excellent low-frequency sound-insulation performance. To further understand the low-frequency sound-insulation mechanism, this paper uses the equivalent model method to conduct an acoustic-electrical analogy, construct an equivalent model of the acoustic metamaterial, and delve into the sound-insulation mechanism at the first sound-insulation peak. To confirm the validity of the theoretical calculations, physical experiments are carried out by 3D printing experimental samples. The analysis of the experimental data has yielded results that are consistent with the simulation data, providing empirical evidence for the accuracy of the theoretical model. The material has significant practical application value. Finally, various factors are studied in depth based on the established equivalent model, which can provide valuable insights for the design and practical engineering application of acoustic metamaterials.
本文提出了一种将迷宫式通道与亥姆霍兹腔以及薄膜相结合的声学超材料。迷宫式开口设计和薄膜组合促成了该超材料卓越的隔音性能。经过全面研究发现,在20 - 1200赫兹的频率范围内,这种声学超材料呈现出多个隔音峰值,整体隔音质量较高。具体而言,第一个隔音峰值为26.3赫兹,带宽为13赫兹,传输损耗为56.5分贝,展现出优异的低频隔音性能。为进一步了解低频隔音机制,本文采用等效模型法进行声电类比,构建声学超材料的等效模型,并深入探究第一个隔音峰值处的隔音机制。为证实理论计算的有效性,通过3D打印实验样品进行物理实验。实验数据分析结果与模拟数据一致,为理论模型的准确性提供了实证依据。该材料具有显著的实际应用价值。最后,基于所建立的等效模型对各种因素进行了深入研究,可为声学超材料的设计及实际工程应用提供有价值的见解。