减少受湍流边界层激励的水下超材料板的低频振动

IF 3.4 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Wenkai Dong, Zhangkai Huang, Ting Wang, Meixia Chen
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引用次数: 0

摘要

水流引起的结构噪声是水下结构流体动力噪声的重要组成部分。局部共振超材料被认为在低频振动和噪声控制领域具有优异的性能和巨大的潜力。为了验证其潜力,本文通过平面波展开(PWE)推导出了侧向局部共振(LLR)板的水下带隙。然后,利用模态叠加方法和瑞利积分技术,得到了 LLR 板在湍流边界层(TBL)激励下的振动声学响应。还通过非相关壁面平面波技术进行了有限元认证。通过参数研究分析了影响控制效果的因素。结果表明,板在带隙频率上对流动诱导振动具有出色的抑制性能。水下超材料板产生的带隙和抑制范围由于厚流体负载而显著缩小。本文为控制流动诱发的结构振动和声学超材料的应用提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-frequency vibration reduction of an underwater metamaterial plate excited by a turbulent boundary layer

Flow-induced structural noise is an important component of hydrodynamic noise of underwater structures. Local resonance metamaterials are considered to have excellent performance and enormous potential in the field of low-frequency vibration and noise control. To verify its potential, the paper derived the underwater band gap of a lateral local resonance (LLR) plate through the plane wave expansion (PWE). Then, utilizing the modal superposition approach and Rayleigh integral technique, the vibro-acoustic response of a LLR plate under a turbulent boundary layer (TBL) excitation is obtained. Finite element certification is also conducted through an uncorrelated wall plane wave technique. Parametric study is conducted to analyse the factors which influence the control effects. The result shows that the plate exhibits excellent suppression performance for flow-induced vibration at band gap frequencies. The band gaps and suppression ranges generated by the underwater metamaterial plate, are dramatically narrowed due to the thick fluid load. The paper provides theoretical guidance for the control of flow-induced structural vibration and the application of acoustic metamaterials.

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来源期刊
Journal of Fluids and Structures
Journal of Fluids and Structures 工程技术-工程:机械
CiteScore
6.90
自引率
8.30%
发文量
173
审稿时长
65 days
期刊介绍: The Journal of Fluids and Structures serves as a focal point and a forum for the exchange of ideas, for the many kinds of specialists and practitioners concerned with fluid–structure interactions and the dynamics of systems related thereto, in any field. One of its aims is to foster the cross–fertilization of ideas, methods and techniques in the various disciplines involved. The journal publishes papers that present original and significant contributions on all aspects of the mechanical interactions between fluids and solids, regardless of scale.
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