Effects of Aperture Shape on Absorption Property of Acoustic Metamaterial of Parallel-Connection Helmholtz Resonator

Author:

Bi Shaohua1,Yang Fei1,Tang Shuai2,Shen Xinmin1ORCID,Zhang Xiaonan1,Zhu Jingwei1,Yang Xiaocui34,Peng Wenqiang5,Yuan Feng6

Affiliation:

1. Field Engineering College, Army Engineering University of PLA, Nanjing 210007, China

2. Systems Engineering Institute, Academy of Military Sciences, Beijing 100071, China

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

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

5. College of Aerospace Science and Engineering, National University of Defense Technology, Changsha 410073, China

6. Graduate School, Army Engineering University of PLA, Nanjing 210007, China

Abstract

A Helmholtz resonator (HR) with an embedded aperture is an effective acoustic metamaterial for noise reduction in the low-frequency range. Its sound absorption property is significantly affected by the aperture shape. Sound absorption properties of HRs with the embedded aperture for various tangent sectional shapes were studied by a two-dimensional acoustic finite element simulation. The sequence of resonance frequency from low to high was olive, common trapeziform, reverse trapeziform, dumbbell and rectangle. Meanwhile, those HRs for various cross-sectional shapes were investigated by a three-dimensional acoustic finite element simulation. The sequence of resonance frequency from low to high were round, regular hexagon, square, regular triangle and regular pentagon. Moreover, the reason for these phenomena was analyzed by the distributions of sound pressure, acoustic velocity and temperature. Furthermore, on the basement of the optimum tangent and cross-sectional shape, the sound absorption property of parallel-connection Helmholtz resonators was optimized. The experimental sample with optimal parameters was fabricated, and its average sound absorption coefficient reached 0.7821 in 500–820 Hz with a limited thickness of 30 mm. The research achievements proved the significance of aperture shape, which provided guidance for the development of sound absorbers in the low-frequency range.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Natural Science Foundation of Hunan Province

China Postdoctoral Science Foundation

Natural Science Foundation of Jiangsu Higher Education Institution

Scientific Research Foundation for the Introduction of talent of Nanjing Vocational University of Industry Technology

Publisher

MDPI AG

Subject

General Materials Science

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