Numerical design and optimization of metamaterials for underwater sound absorption at various hydrostatic pressures

IF 2.8 4区 工程技术 Q1 ACOUSTICS Journal of Low Frequency Noise Vibration and Active Control Pub Date : 2023-03-25 DOI:10.1177/14613484231166362
Yifeng Fu, Huming Wang, P. Cao
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Abstract

Underwater sound absorption materials with a stable performance at various hydrostatic pressures are important for marine applications. However, most studies about underwater sound absorption materials only focused on the performance at atmospheric hydrostatic pressure, while ignoring the influence of various hydrostatic pressures. Aiming to improve the underwater sound absorption stability of a metamaterial at various hydrostatic pressures, different structures and a Nelder–Mead algorithm with an acoustic-structure fully coupled finite element method (FEM) model are developed to optimize the structure of the metamaterial at various hydrostatic pressures. In this numerical modeling, the metamaterial is a PDMS matrix embedded with periodic cylinders. Firstly, the effect of hydrostatic pressure on the metamaterial is evaluated in the frequency range [0, 8 kHz]. Secondly, different cases are designed to improve the underwater sound absorption stability at various hydrostatic pressures, including different cylinder radii, different distances between the air cylinder and the steel backing, and different void shapes. Then two layers of air and/or steel cylinders are introduced to further improve sound absorption performance under various hydrostatic pressures. The results indicate that PDMS with two layers of air cylinders have the optimal sound absorption stability performance under various hydrostatic pressures, which can be attributed to the top layer of air cylinders absorbing the main deformation. Lastly, the optimization algorithm significantly improves the sound absorption performance of the metamaterials at various hydrostatic pressures. This combination of an optimistic algorithm and FEM can guide the design of underwater sound absorption metamaterials at various hydrostatic pressures.
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不同静水压力下水下吸声材料的数值设计与优化
在各种静水压力下性能稳定的水下吸声材料对海洋应用具有重要意义。然而,大多数关于水下吸声材料的研究只关注在大气静水压力下的吸声性能,而忽略了各种静水压力对吸声材料的影响。为了提高一种超材料在不同静水压力下的吸声稳定性,采用不同的结构,建立了基于声-结构全耦合有限元模型的Nelder-Mead算法,对不同静水压力下的超材料进行结构优化。在此数值模拟中,超材料是嵌入周期性圆柱体的PDMS矩阵。首先,在[0,8 kHz]的频率范围内评估静水压力对超材料的影响。其次,在不同的静水压力下,设计不同的壳体,包括不同的筒体半径、不同的气缸与钢背之间的距离以及不同的空隙形状,以提高水声吸声稳定性。然后引入两层空气和/或钢瓶,进一步提高在各种静水压力下的吸声性能。结果表明,在各种静水压力下,两层气缸结构的PDMS吸声稳定性能最优,这可能是由于顶层气缸吸收了主要的变形。最后,优化算法显著提高了超材料在不同静水压力下的吸声性能。这种乐观算法与有限元法的结合可以指导不同静水压力下的吸声材料的设计。
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来源期刊
CiteScore
4.90
自引率
4.30%
发文量
98
审稿时长
15 weeks
期刊介绍: Journal of Low Frequency Noise, Vibration & Active Control is a peer-reviewed, open access journal, bringing together material which otherwise would be scattered. The journal is the cornerstone of the creation of a unified corpus of knowledge on the subject.
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