scholarly journals Light-weight large-scale tunable metamaterial panel for low-frequency sound insulation

2020 ◽  
Vol 13 (6) ◽  
pp. 067003
Author(s):  
Hao Zhang ◽  
Shengbing Chen ◽  
Zongzheng Liu ◽  
Yubao Song ◽  
Yong Xiao
2020 ◽  
Vol 34 (21) ◽  
pp. 2050220
Author(s):  
Ying-Rui Ye ◽  
Xiao-Peng Wang ◽  
Tian-Ning Chen ◽  
Yong-Yong Chen

With the development of acoustic metamaterials (AMM), more and more researchers focus on the study of plate-type acoustic metamaterial panel (PAMMP). With the goal of industrial applications, the structural design methods of large-scale PAMMP are important. In this research, we establish an infinite plate-type acoustic metamaterial panel (IPAMMP) model, and experimental and simulation results show that the sound transmission loss (STL) curves of IPAMMP and large-scale PAMMP have good consistency in an interested range. On this basis, a set of step-by-step structural design methods for single-frequency and multi-frequency sound insulation are proposed. By adjusting the structural parameters of IPAMMP, the single-frequency STL peak could be shifted. Further study shows that multiple STL peaks could be realized in the low-frequency range by placing different masses on IPAMMP. Finally, taking transformers 100 Hz, 200 Hz, 300 Hz, 400 Hz and 500 Hz as examples, the feasibility of the structural design methods is verified by simulation. Consequently, the proposed step-by-step structural design methods could address the single-frequency and multi-frequency sound insulation at a specific frequency, demonstrating adjustability.


AIP Advances ◽  
2021 ◽  
Vol 11 (4) ◽  
pp. 045321
Author(s):  
Chi Xu ◽  
Hui Guo ◽  
Yinghang Chen ◽  
Xiaori Dong ◽  
Hongling Ye ◽  
...  

AIP Advances ◽  
2016 ◽  
Vol 6 (2) ◽  
pp. 025116 ◽  
Author(s):  
Kuan Lu ◽  
Jiu Hui Wu ◽  
Dong Guan ◽  
Nansha Gao ◽  
Li Jing

2019 ◽  
Vol 15 (5) ◽  
pp. 1006-1015
Author(s):  
Mengna Cai ◽  
Hongyan Tian ◽  
Haitao Liu ◽  
Yanhui Qie

Purpose With the development of the modern technology and aerospace industry, the noise pollution is remarkably affecting people’s daily life and has been become a serious issue. Therefore, it is the most important task to develop efficient sound attenuation barriers, especially for the low-frequency audible range. However, low-frequency sound attenuation is usually difficult to achieve for the constraints of the conventional mass-density law of sound transmission. The traditional acoustic materials are reasonably effective at high frequency range. This paper aims to discuss this issue. Design/methodology/approach Membrane-type local resonant acoustic metamaterial is an ideal low-frequency sound insulation material for its structure is simple and lightweight. In this paper, the finite element method is used to study the low-frequency sound insulation performances of the coupled-membrane type acoustic metamaterial (CMAM). It consists of two identical tensioned circular membranes with fixed boundary. The upper membrane is decorated by a rigid platelet attached to the center. The sublayer membrane is attached with two weights, a central rigid platelet and a concentric ring with inner radius e. The influences of the distribution and number of the attached mass, also asymmetric structure on the acoustic attenuation characteristics of the CMAM, are discussed. Findings In this paper, the acoustic performance of asymmetric coupled-membrane metamaterial structure is discussed. The influences of mass number, the symmetric and asymmetry structure on the sound insulation performance are analyzed. It is shown that increasing the number of mass attached on membrane, structure exhibits low-frequency and multi-frequency acoustic insulation phenomenon. Compared with the symmetrical structure, asymmetric structure shows the characteristics of lightweight and multi-frequency sound insulation, and the sound insulation performance can be tuned by adjusting the distribution mode and location of mass blocks. Originality/value Membrane-type local resonant acoustic metamaterial is an ideal low-frequency sound insulation material for its structure is simple and lightweight. How to effectively broaden the acoustic attenuation band at low frequency is still a problem. But most of researchers focus on symmetric structures. In this study, the asymmetric coupled-membrane acoustic metamaterial structure is examined. It is demonstrated that the asymmetric structure has better sound insulation performances than symmetric structure.


1997 ◽  
Vol 4 (1) ◽  
pp. 21-37
Author(s):  
C.F. Ng ◽  
Qin Hao-Ming

This report deals with a theoretical and experimental study of the low frequency sound absorption characteristics of perforated honeycomb sandwich panels. The derivations of formulae for absorption in terms of double perforation ratio and air gap are presented. Results show that the honeycomb absorber, with double perforated sheets, can be an effective low frequency absorber for frequencies down to 63 Hz. In addition, honeycomb panels have advantages over other low frequency absorbers in that they are light weight and strong.


2014 ◽  
Vol 899 ◽  
pp. 499-504
Author(s):  
Juraj Medveď ◽  
Bart Ingeleare ◽  
Lieven de Geetere

This paper dealt with measurement and analysis of different floor structures and their acoustic optimization towards the improvement of the impact sound insulation. Special attention goes to light weight timber frame constructions with taking in account the low frequency bands. The aim of the research is to create or design acoustic optimized lightweight floor constructions and mainly to find a good solution to achieve the best possible impact sound insulation for lightweight floors with the lowest possible thickness and low cost. Following contribution is first part of mentioned investigation and deal about test results on mockup lightweight construction.


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