Deep-subwavelength broadband underwater sound absorption: Modeling, optimization, and mechanism elucidation

J Jiayu Wang (Jiangsu Engineering Laboratory of Novel Functional Polymeric Materials, Jiangsu Key Laboratory of Advanced Negative Carbon Technologies, Suzhou Key Laboratory of Soft Material and New Energy, College of Chemistry, Chemical Engineering and Materials Science, Soochow University) Y Yuanze Li (Department of Mechanical Engineering, The Hong Kong Polytechnic University 3 , Hung Hom, Kowloon,) X Xiang Yu B Badreddine Assouar (Université de Lorraine, CNRS, Institut Jean Lamour 4 , Nancy 54000,) S Siqi Ding Y Yi-Qing Ni K Kai Zhou

Abstract

Low-frequency underwater noise absorption remains challenging because the large characteristic acoustic impedance and long wavelength in water make conventional porous/fibrous treatments impractical, while thermoviscous-loss-based resonant absorbers often suffer from weak intrinsic dissipation and narrowband performance. This work proposes a deep-subwavelength underwater absorber that combines two coupled folded-cavity extended-neck Helmholtz-resonator layers via a thin rubber damping interlayer, enabling either frequency-targeted strong absorption or bandwidth-enhanced performance within the same compact footprint. A unified lumped-impedance network model is developed for efficient design and optimization, using the Johnson–Champoux–Allard formulation as the representative thermoviscous neck model and retaining short-tube and thermoviscous-duct formulations as consistency checks. COMSOL-based single-neck thermoviscous benchmarks show that these formulations yield practically indistinguishable complex neck-impedance predictions in water over 20–1000 Hz for the investigated geometries. Guided by this validated model, SQP optimization produces representative frequency-targeted and broadband designs. The optimized absorbers achieve strong deep-subwavelength absorption in the 250–450 Hz range with total thicknesses of only 32–42 mm, while a broadband design with H = 52 mm maintains SAC > 0.5 over a several-hundred-Hz band within 619–968 Hz. In addition, the rubber interlayer provides additional resonance retuning toward lower frequencies and a pronounced bandwidth gain for coupled or multi-resonant configurations, offering a simple and manufacturable means of tailoring low-frequency and broadband underwater absorption.

Article Details

Volume / Issue Vol. 140, Issue 1
Published July 07, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (7)

J

Jiayu Wang

Jiangsu Engineering Laboratory of Novel Functional Polymeric Materials, Jiangsu Key Laboratory of Advanced Negative Carbon Technologies, Suzhou Key Laboratory of Soft Material and New Energy, College of Chemistry, Chemical Engineering and Materials Science, Soochow University

Y

Yuanze Li

Department of Mechanical Engineering, The Hong Kong Polytechnic University 3 , Hung Hom, Kowloon,

X

Xiang Yu

B

Badreddine Assouar

Université de Lorraine, CNRS, Institut Jean Lamour 4 , Nancy 54000,

S

Siqi Ding

Y

Yi-Qing Ni

K

Kai Zhou