受榫卯结构启发的蜂窝超材料吸音性能

IF 3.4 2区 物理与天体物理 Q1 ACOUSTICS
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引用次数: 0

摘要

为了解决传统蜂窝夹层结构在衰减中低频声音方面的局限性,特别是在厚度和重量最小的结构中,本研究引入了一种创新的蜂窝声学超材料,其中结合了中国传统的榫卯结构。我们通过理论分析、经验验证和数值模拟,系统地研究了改良蜂窝结构的吸声特性。我们的实验装置在所有试验中都保持了一致的几何参数,并证明改良蜂窝结构的共振频率比传统结构降低了 10%。我们详细分析了微孔定位、榫头几何尺寸和微孔直径对声学性能的影响。值得注意的是,将榫头从 2 毫米拉长到 6 毫米可使共振频率降低 15%,而将微孔到榫头的距离从 0 毫米增加到 4 毫米可使共振频率提高 30%。榫卯连接的集成大大提高了蜂窝板的中低频吸音性能。在实现这一改进的同时,还保留了低面板厚度和浅空腔深度的结构优势,并简化了微孔加工。我们的研究结果阐明了一种增强轻质结构材料声学特性的可行方法,从而扩大了它们在噪声控制工程中的应用潜力。这项研究不仅为声学超材料的设计和优化提供了一个新的视角,而且凸显了将传统建筑技术与现代材料科学相结合以增强噪声控制解决方案的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sound absorption performance of honeycomb metamaterials Inspired by Mortise-and-Tenon structures

To address the limitations of traditional honeycomb sandwich structures in attenuating mid to low-frequency sounds, particularly in configurations with minimal thickness and weight, this study introduces an innovative honeycomb acoustic metamaterial incorporating the traditional Chinese mortise-and-tenon joint. We systematically investigate the acoustic absorption characteristics of the modified honeycomb structure through theoretical analysis, empirical validation, and numerical simulations. Our experimental setup maintained consistent geometric parameters across all trials and demonstrated that the resonance frequency of the modified honeycomb structure decreased by 10 % relative to its conventional counterpart. We conducted detailed analyses on the influence of micropore positioning, tenon geometric dimensions, and micropore diameters on the acoustic performance. Notably, elongating the tenon from 2 mm to 6 mm resulted in a 15 % reduction in resonance frequency, whereas increasing the micropore-to-tenon distance from 0 mm to 4 mm led to a 30 % increase. The integration of the mortise-and-tenon joint significantly enhances the mid to low-frequency sound absorption performance of the honeycomb panels. This improvement is achieved while preserving the structural benefits of low panel thickness and shallow cavity depth, alongside simplified processing of micropores. Our findings elucidate a promising approach to augmenting the acoustic properties of lightweight structural materials, thereby extending their application potential in noise control engineering. This study not only contributes a novel perspective to the design and optimization of acoustic metamaterials but also highlights the potential for integrating traditional architectural techniques with modern material science to enhance noise control solutions.

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来源期刊
Applied Acoustics
Applied Acoustics 物理-声学
CiteScore
7.40
自引率
11.80%
发文量
618
审稿时长
7.5 months
期刊介绍: Since its launch in 1968, Applied Acoustics has been publishing high quality research papers providing state-of-the-art coverage of research findings for engineers and scientists involved in applications of acoustics in the widest sense. Applied Acoustics looks not only at recent developments in the understanding of acoustics but also at ways of exploiting that understanding. The Journal aims to encourage the exchange of practical experience through publication and in so doing creates a fund of technological information that can be used for solving related problems. The presentation of information in graphical or tabular form is especially encouraged. If a report of a mathematical development is a necessary part of a paper it is important to ensure that it is there only as an integral part of a practical solution to a problem and is supported by data. Applied Acoustics encourages the exchange of practical experience in the following ways: • Complete Papers • Short Technical Notes • Review Articles; and thereby provides a wealth of technological information that can be used to solve related problems. Manuscripts that address all fields of applications of acoustics ranging from medicine and NDT to the environment and buildings are welcome.
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