Characteristics of pressure resistance and sound absorption on anechoic coating with metal perforated plate under hydrostatic pressure

被引:1
作者
Jia, Xin-Yu [1 ]
Jin, Guo-Yong [1 ]
Ye, Tian-Gui [1 ]
Yan, Yan [1 ]
机构
[1] College of Power and Energy Engineering, Harbin Engineering University, Harbin
来源
Zhendong Gongcheng Xuebao/Journal of Vibration Engineering | 2024年 / 37卷 / 07期
关键词
anechoic coating; deformation; hydrostatic pressure; metal perforated plate; sound absorption performance;
D O I
10.16385/j.cnki.issn.1004-4523.2024.07.013
中图分类号
学科分类号
摘要
An underwater acoustic structure with metal perforated plate inserted into the traditional anechoic coating is proposed to improve the pressure resistance and sound absorption performance of the structure. The deformation of the acoustic structure under different hydrostatic pressure is studied by the static method. By establishing the acoustic finite element equation under the action of hydrostatic pressure,the sound absorption effect of the acoustic structure under different hydrostatic pressure is analyzed. Compared with the traditional anechoic coating,under the hydrostatic pressure of 0 to 6 MPa,the acoustic structure achieves better broadband sound absorption in the mid-to-high frequency range. In addition,the effects of the thickness,material and porosity of the metal perforated plate on the sound absorption performance of the acoustic structure are discussed. The research shows that the underwater anechoic coating with metal perforated plate is an effective design to improve the pressure resistance and sound absorption performance of underwater acoustic structure. © 2024 Nanjing University of Aeronautics an Astronautics. All rights reserved.
引用
收藏
页码:1211 / 1220
页数:9
相关论文
共 27 条
  • [1] Zhang T X, Liu S W, He X, Et al., Underwater target tracking using forward-looking sonar for autonomous underwater vehicles[J], Sensors, 20, 1, pp. 1-28, (2019)
  • [2] Liu Guoqiang, Lou Jingjun, He Qiwei, Absorption characteristics of multi-layered material anechoic coating on composite cavities, Journal of Wuhan University of Technology (Transportation Science & Engineering), 40, 5, pp. 850-858, (2016)
  • [3] Gao Nansha, Hou Hong, Low frequency bandgap characteristics of three-dimensional local resonance phononic crystal, Material Reports, 32, 1, pp. 322-326, (2018)
  • [4] Zhao H G, Wang Y, Yu D L, Et al., A double porosity material for low frequency sound absorption[J], Composite Structures, 239, (2020)
  • [5] Shi Kangkang, Jin Guoyong, Ye Tiangui, Et al., Underwater sound absorption performance of functionally graded anechoic coating with cavities, Acta Acustica, 46, 3, pp. 394-404, (2021)
  • [6] Hou Jiuxiao, Zhu Haichao, Liao Jinlong, Et al., Sound absorption characteristics of underwater flexible micro-perforated sound absorption structure, Acta Acustica, 46, 1, pp. 135-142, (2021)
  • [7] Wang Yuren, Miao Xuhong, Jiang Heng, Et al., Review on underwater sound absorption materials and mechanisms, Advances in Mechanics, 47, 1, pp. 92-121, (2017)
  • [8] Ma Xiaochen, Li Jianlong, Song Hao, Et al., Measurement of the absorption coefficient for acoustical coating samples using multichannel inverse filter, Acta Acustica, 44, 4, pp. 726-734, (2019)
  • [9] Zhou Shuailong, Chen Litian, Liu Xiaoxia, Optimal design of anechoic coatings, Noise and Vibration Control, 41, 4, pp. 35-41, (2021)
  • [10] Zhen Dong, Wang Ziyu, Jiao Xianghe, Et al., Structural optimization of micro-perforated panel using random-interval mixed uncertainty theory, Journal of Vibration Engineering, 35, 1, pp. 228-235, (2022)