TY - JOUR
T1 - Water-Saturated Porous Sound Absorbing Metamaterial Resistant to High Hydrostatic Pressures and Low Temperatures
AU - Ren, Shuwei
AU - Sun, Wei
AU - Zhao, Zijian
AU - Wang, Qian
AU - Che, Fei
AU - Liu, Yiyang
AU - Wang, Haitao
AU - Lei, Ye
AU - Zeng, Xiangyang
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025
Y1 - 2025
N2 - This study proposes a stable underwater sound absorbing metamaterial that performs reliably under high hydrostatic pressures and low temperatures. The metamaterial is fabricated using a coplanar spiral geometry to coil water-saturated porous metal materials, which theoretically ensures strong underwater sound absorption in the subwavelength regime (≈λ/25.62 at 1380 Hz). The water-permeable structure and the exceptional mechanical properties (e.g., high modulus) of the porous metal matrix allowed the metamaterial to withstand high hydrostatic pressure with negligible influence on sound absorption. Furthermore, water temperature has a minimal effect on the intrinsic viscous dissipation mechanism (e.g., absorption peak amplitude and frequency reductions did not exceed 7.7% between 25 °C and 4 °C). Parametric analyzes reveal that the acoustic absorption performance of the proposed metamaterial can be maintained in different application environments through unit tuning or multiunit coupling. Finally, an integrated sample is experimentally measured to validate the theoretical and numerical methods. The sample exhibits satisfactory sound absorption at 1.8 kHz under low water temperature (11.2 °C) and a high hydrostatic pressure (4.5 MPa). This study provides a foundation for designing highly stable underwater acoustic metamaterials.
AB - This study proposes a stable underwater sound absorbing metamaterial that performs reliably under high hydrostatic pressures and low temperatures. The metamaterial is fabricated using a coplanar spiral geometry to coil water-saturated porous metal materials, which theoretically ensures strong underwater sound absorption in the subwavelength regime (≈λ/25.62 at 1380 Hz). The water-permeable structure and the exceptional mechanical properties (e.g., high modulus) of the porous metal matrix allowed the metamaterial to withstand high hydrostatic pressure with negligible influence on sound absorption. Furthermore, water temperature has a minimal effect on the intrinsic viscous dissipation mechanism (e.g., absorption peak amplitude and frequency reductions did not exceed 7.7% between 25 °C and 4 °C). Parametric analyzes reveal that the acoustic absorption performance of the proposed metamaterial can be maintained in different application environments through unit tuning or multiunit coupling. Finally, an integrated sample is experimentally measured to validate the theoretical and numerical methods. The sample exhibits satisfactory sound absorption at 1.8 kHz under low water temperature (11.2 °C) and a high hydrostatic pressure (4.5 MPa). This study provides a foundation for designing highly stable underwater acoustic metamaterials.
KW - coplanar spiral geometry
KW - underwater sound absorptions
KW - water-saturated porous metal materials
UR - http://www.scopus.com/inward/record.url?scp=105006749653&partnerID=8YFLogxK
U2 - 10.1002/adem.202500441
DO - 10.1002/adem.202500441
M3 - 文章
AN - SCOPUS:105006749653
SN - 1438-1656
JO - Advanced Engineering Materials
JF - Advanced Engineering Materials
ER -