Locally resonant pressure-resistant meta-shell with accordion zero Poisson's ratio core for sound insulation and sound radiation suppression

IF 5.5 2区 工程技术 Q1 ENGINEERING, CIVIL Ocean Engineering Pub Date : 2024-10-23 DOI:10.1016/j.oceaneng.2024.119504
Qi Jia , Donghai Han , Chao Wang , Bing Hu , Jihong Wen , Dianlong Yu
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Abstract

The multi-functionalization of deep-sea submersibles is an important development trend of advanced marine technology, and the new shell material is one of the main design playgrounds. Recent mechanical metamaterials have the capability to prevent transverse displacements during unidirectional compression (when the Poisson's ratio is flexibly adjusted to 0) and precisely manipulate elastic/acoustic waves on a sub-wavelength scale through their inherent resonance characteristics. Therefore, the metamaterial is introduced into the shell core of underwater equipment or submersible structure, which has potential technical advantages. The pre-strain wave propagation characteristics of the considered models are obtained static and dynamic steps via the finite element method. The pressure-resistant, sound transmission and radiation properties of meta-shell sandwiched the metamaterial cores are then investigated. The results show that in comparison with a traditional zero Poisson's ratio (ZPR) honeycomb core, the proposed meta-shell with a novel ZPR metamaterial core can safely withstand hydrostatic pressures equivalent to depths of 1000 m with greater safety redundancy, while also achieving sound insulation and sound radiation suppression in the low-frequency range. This work successfully demonstrates an advanced design method for sound insulation and sound radiation suppression of shells.

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用于隔音和抑制声辐射的局部共振抗压元壳,带有风琴式零泊松比内核
深海潜水器的多功能化是先进海洋技术的重要发展趋势,而新型壳体材料则是主要的设计领域之一。最新的机械超材料能够防止单向压缩时的横向位移(当泊松比灵活调整为 0 时),并通过其固有的共振特性在亚波长尺度上精确操纵弹性/声波。因此,在水下设备或潜水器结构的壳芯中引入超材料具有潜在的技术优势。通过有限元法获得了所考虑模型的预应变波传播特性的静态和动态步骤。然后研究了超材料内核夹元壳的抗压、传声和辐射特性。结果表明,与传统的零泊松比(ZPR)蜂窝内核相比,采用新型 ZPR 超材料内核的元壳可以安全地承受相当于 1000 米深的静水压力,并具有更高的安全冗余度,同时还能在低频范围内实现隔音和声辐射抑制。这项工作成功地展示了一种先进的壳体隔声和声辐射抑制设计方法。
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来源期刊
Ocean Engineering
Ocean Engineering 工程技术-工程:大洋
CiteScore
7.30
自引率
34.00%
发文量
2379
审稿时长
8.1 months
期刊介绍: Ocean Engineering provides a medium for the publication of original research and development work in the field of ocean engineering. Ocean Engineering seeks papers in the following topics.
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