Acoustic-modeling of random fibrous materials

IF 4.9 2区 工程技术 Q1 ACOUSTICS Journal of Sound and Vibration Pub Date : 2025-03-31 Epub Date: 2024-12-03 DOI:10.1016/j.jsv.2024.118897
Xiangjun Peng , Yuxuan Huang , Chenlei Yu , Xiangyu Xie , Wei He , Tian Jian Lu
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Abstract

We present a microstructure-based model for determining the sound absorption behavior and transport parameters of random fibrous materials and exploring the physical mechanisms underlying acoustic energy dissipation. In order to increase the generalizability of the model, a three-dimensional random fiber structure is employed for simulation. The propagation of sound waves is associated with four transport parameters, including viscous permeability, tortuosity, as well as viscous and thermal characteristic lengths. These parameters are determined by the porosity and diameter of the fibrous material. By using the method of multi-scale asymptotic simulation, the theoretical model for transport parameters includes unknown coefficients that are adjusted based on the simulated results. The sound absorption coefficients are then obtained by integrating the transport parameters into the widely-used Johnson-Champoux-Allard (JCA) model for porous materials. The theoretical predictions match well with existing experimental measurements on sintered fiber metals and fibrous copper wires. Our model systematically examines the impact of fiber diameter, porosity, and material thickness on sound absorption performance. Optimal results are achieved by carefully selecting fiber diameter and porosity to enhance the acoustic dissipation of sound waves, while thicker fibrous materials increase sound absorption in the low frequency range. The model provides a theoretical framework for designing and fabricating fibrous materials to reduce noise.
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随机纤维材料的声学建模
我们提出了一种基于微观结构的模型,用于确定随机纤维材料的吸声行为和传输参数,并探索声能耗散的物理机制。为了提高模型的通用性,采用三维随机纤维结构进行仿真。声波的传播与四个输运参数有关,包括粘性渗透率、弯曲度以及粘性和热特性长度。这些参数由纤维材料的孔隙率和直径决定。采用多尺度渐近模拟方法,建立了包含未知系数的输运参数理论模型,并根据模拟结果进行了调整。然后通过将输运参数整合到广泛使用的多孔材料Johnson-Champoux-Allard (JCA)模型中,得到吸声系数。理论预测与现有的烧结金属纤维和纤维铜线的实验测量结果吻合良好。我们的模型系统地考察了纤维直径、孔隙率和材料厚度对吸声性能的影响。通过精心选择纤维直径和孔隙率来增强声波的声耗散,从而达到最佳效果,而较厚的纤维材料则增加了低频范围内的吸声。该模型为设计和制造降低噪声的纤维材料提供了理论框架。
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来源期刊
Journal of Sound and Vibration
Journal of Sound and Vibration 工程技术-工程:机械
CiteScore
9.10
自引率
10.60%
发文量
551
审稿时长
69 days
期刊介绍: The Journal of Sound and Vibration (JSV) is an independent journal devoted to the prompt publication of original papers, both theoretical and experimental, that provide new information on any aspect of sound or vibration. There is an emphasis on fundamental work that has potential for practical application. JSV was founded and operates on the premise that the subject of sound and vibration requires a journal that publishes papers of a high technical standard across the various subdisciplines, thus facilitating awareness of techniques and discoveries in one area that may be applicable in others.
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