Reflective Metasurfaces with Multiple Elastic Mode Conversions for Broadband Underwater Sound Absorption

被引:31
|
作者
Dong, Hao-Wen [1 ,2 ]
Zhao, Sheng-Dong [3 ]
Oudich, Mourad [4 ,5 ]
Shen, Chen [6 ]
Zhang, Chuanzeng [7 ]
Cheng, Li [2 ]
Wang, Yue-Sheng [8 ]
Fang, Daining [1 ]
机构
[1] Beijing Inst Technol, Inst Adv Struct Technol, Beijing 100081, Peoples R China
[2] Hong Kong Polytech Univ, Dept Mech Engn, Kowloon, Hong Kong 999077, Peoples R China
[3] Qingdao Univ, Sch Math & Stat, Qingdao 266071, Peoples R China
[4] Penn State Univ, Grad Program Acoust, University Pk, PA 16802 USA
[5] Univ Lorraine, CNRS, Inst Jean Lamour, F-54000 Nancy, France
[6] Rowan Univ, Dept Mech Engn, Glassboro, NJ 08028 USA
[7] Univ Siegen, Dept Civil Engn, D-57068 Siegen, Germany
[8] Tianjin Univ, Sch Mech Engn, Dept Mech, Tianjin 300350, Peoples R China
基金
中国国家自然科学基金;
关键词
MASS DENSITY; METAMATERIALS; OPTIMIZATION;
D O I
10.1103/PhysRevApplied.17.044013
中图分类号
O59 [应用物理学];
学科分类号
摘要
Unlike their electromagnetic and acoustic counterparts, elastic waves involve different wave modes. The interplay and the coupling among them increase the complexity of the problem while also offering a larger space for wave manipulation. Elastic bulk wave conversion in an elastic metamaterial has recently shown great promise in medical ultrasound and nondestructive testing. Unlike the transmissiontype conversion, however, reflective elastic mode conversion has been explored less in terms of analysis and design, despite the enormous possibilities that it might offer for energy trapping and dissipation. In this work, we develop a theoretical framework for constructing elastic anisotropic metasurfaces that can enable reflective longitudinal-to-transverse (L-to-T) and transverse-to-longitudinal (T-to-L) wave conversions. We capitalize on the mechanism of multiple reflective mode conversion to achieve broadband, subwavelength, and near perfect sound absorption in the underwater environment. The reflective scattering properties of the metasurfaces are systematically exploited for incident longitudinal or transverse waves. The conversion mechanism is rooted in reflective Fabry-Perot (FP) resonance, whose occurrence conditions and features are predicted for prescribed effective parameters of the metasurface. We then establish an inverse-design framework for conceiving an underwater coating system formed by a viscoelastic rubber layer and the metasurface. A series of metasurfaces allowing for customized mode conversions are realized for delivering broadband low-frequency and high-efficiency underwater sound absorption. Specifically, an ultrathin rubber-metasurface layer in which the metasurface with a thickness of approximately lambda/70 can lead to nearly 100% sound absorption. Furthermore, we demonstrate that a persistently high absorption (over 80%) can be obtained in a rather robust manner within a wide range of wave incidence angle from -60 degrees to 60 degrees. More importantly, high-efficiency acoustic absorption exceeding 75% can be readily achieved through multiple mode conversions within the ultrabroadband range featuring a relative bandwidth of 119%. We reveal the combined FP resonance mechanism of underwater sound absorption, i.e., the FP resonance of the metaconverter, which determines the L-to-T and T-to-L conversion ratio, and the FP resonance of the rubber-metasurface layers, which enhances the wave attenuation inside the rubber. The proposed reflective multiple mode-conversion mechanism and metasurface design methodology open a route towards a class of elastic-wave-based devices with promising potential for underwater applications.
引用
收藏
页数:30
相关论文
共 45 条
  • [31] Study on the Low-Frequency and Broadband Sound Absorption Performance of an Underwater Anechoic Layer with Novel Design
    Hu, Jinshun
    Lin, Yongshui
    Zhou, Zhiwei
    Cao, Xiaofei
    Chi, Qingjia
    Wu, Weiguo
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2023, 11 (02)
  • [32] Underwater metastructure with broadband sound absorption capability in low-frequency range above 20 Hz
    Zhang, Ruihao
    Song, Yifan
    Hou, Hong
    Gao, Nansha
    MODERN PHYSICS LETTERS B, 2021, 35 (01):
  • [33] Tunable composite lattice structure for low-frequency and ultra-broadband underwater sound absorption
    Liu, Botao
    Huang, Sibo
    Zheng, Bo
    Chen, Xuefeng
    Zhao, Jia
    Qi, Xinrui
    Li, Yong
    Liu, Shengchun
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2023, 153 (01): : 415 - 422
  • [34] Ultra-broadband sound absorption of a multiple-cavity metastructure with gradient thickness
    Li, Yingli
    Yan, Yu
    Peng, Yong
    AEROSPACE SCIENCE AND TECHNOLOGY, 2023, 133
  • [35] A thin meta-structure with multi-order resonance for underwater broadband sound absorption in low frequency
    Wang, Li Bo
    Ma, Cheng Zhi
    Wu, Jiu Hui
    APPLIED ACOUSTICS, 2021, 179
  • [36] A New Multi-Mechanism Synergistic Acoustic Structure for Underwater Low-Frequency and Broadband Sound Absorption
    Shi, Kangkang
    Li, Dongsheng
    Hu, Dongsen
    Shen, Qi
    Jin, Guoyong
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2023, 11 (12)
  • [37] Ultra-broadband sound absorption characteristics in underwater ultra-thin metamaterial with three layer bubbles
    Gao, Nansha
    Huang, Qiaogao
    Pan, Guang
    ENGINEERING REPORTS, 2024, 6 (11)
  • [38] A broadband sound-absorbing panel based on the coiled coplanar absorber with multiple absorption peaks
    Han, Lei
    Ji, Hongli
    Qiu, Jinhao
    PHYSICA SCRIPTA, 2021, 96 (08)
  • [39] Interlayer Parallel Connection of Multiple Helmholtz Resonators for Optional Broadband Low Frequency Sound Absorption
    Yang, Xiaocui
    Li, Qiang
    Shen, Xinmin
    Zhou, Binbin
    Wang, Ning
    Wang, Enshuai
    Zhang, Xiaonan
    Shen, Cheng
    Wang, Hantian
    Jiang, Shunjie
    MATERIALS, 2025, 18 (03)
  • [40] Equations for normal-mode statistics of sound scattering by a rough elastic boundary in an underwater waveguide, including backscattering
    Morozov, Andrey K.
    Colosi, John A.
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2017, 142 (03): : EL292 - EL298