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用于宽低频吸声频段的可调谐平行亥姆霍兹声学超材料的研制

Development of Adjustable Parallel Helmholtz Acoustic Metamaterial for Broad Low-Frequency Sound Absorption Band.

作者信息

Yang Xiaocui, Yang Fei, Shen Xinmin, Wang Enshuai, Zhang Xiaonan, Shen Cheng, Peng Wenqiang

机构信息

Engineering Training Center, Nanjing Vocational University of Industry Technology, Nanjing 210023, China.

MIIT Key Laboratory of Multifunctional Lightweight Materials and Structures (MLMS), Nanjing University of Aeronautics and Astronautics, Nanjing 210016, China.

出版信息

Materials (Basel). 2022 Aug 27;15(17):5938. doi: 10.3390/ma15175938.

Abstract

For the common difficulties of noise control in a low frequency region, an adjustable parallel Helmholtz acoustic metamaterial (APH-AM) was developed to gain broad sound absorption band by introducing multiple resonant chambers to enlarge the absorption bandwidth and tuning length of rear cavity for each chamber. Based on the coupling analysis of double resonators, the generation mechanism of broad sound absorption by adjusting the structural parameters was analyzed, which provided a foundation for the development of APH-AM with tunable chambers. Different from other optimization designs by theoretical modeling or finite element simulation, the adjustment of sound absorption performance for the proposed APH-AM could be directly conducted in transfer function tube measurement by changing the length of rear cavity for each chamber. According to optimization process of APH-AM, The target for all sound absorption coefficients above 0.9 was achieved in 602-1287 Hz with normal incidence and that for all sound absorption coefficients above 0.85 was obtained in 618-1482 Hz. The distributions of sound pressure for peak absorption frequency points were obtained in the finite element simulation, which could exhibit its sound absorption mechanism. Meanwhile, the sound absorption performance of the APH-AM with larger length of the aperture and that with smaller diameter of the aperture were discussed by finite element simulation, which could further show the potential of APH-AM in the low-frequency sound absorption. The proposed APH-AM could improve efficiency and accuracy in adjusting sound absorption performance purposefully, which would promote its practical application in low-frequency noise control.

摘要

针对低频区域噪声控制的常见难题,开发了一种可调谐并联亥姆霍兹声学超材料(APH-AM),通过引入多个共振腔来拓宽吸声带宽,并对每个腔的后腔长度进行调谐,以扩大吸声带宽。基于双谐振器的耦合分析,分析了通过调整结构参数实现宽频吸声的产生机理,为开发具有可调谐腔的APH-AM奠定了基础。与其他通过理论建模或有限元模拟进行的优化设计不同,对于所提出的APH-AM,可通过在传递函数管测量中改变每个腔的后腔长度直接调整吸声性能。根据APH-AM的优化过程,在垂直入射时,602 - 1287 Hz范围内实现了所有吸声系数高于0.9的目标,在618 - 1482 Hz范围内实现了所有吸声系数高于0.85的目标。通过有限元模拟获得了峰值吸声频率点的声压分布,可展示其吸声机理。同时,通过有限元模拟讨论了孔径较大和孔径较小的APH-AM的吸声性能,可进一步展示APH-AM在低频吸声方面的潜力。所提出的APH-AM能够有目的地提高调整吸声性能的效率和准确性,这将推动其在低频噪声控制中的实际应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/37c8/9456593/1cc8e17955e2/materials-15-05938-g001.jpg

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