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单分散开孔泡沫材料的声学特性:一项实验与数值参数研究。

Acoustics of monodisperse open-cell foam: An experimental and numerical parametric study.

作者信息

Langlois V, Kaddami A, Pitois O, Perrot C

机构信息

Lab Navier, Univ Gustave Eiffel, ENPC, CNRS, F-77447 Marne-la-Vallée, France.

Univ Gustave Eiffel, Univ Paris Est Creteil, CNRS, MSME UMR 8208, F-77454 Marne-la-Vallée, France.

出版信息

J Acoust Soc Am. 2020 Sep;148(3):1767. doi: 10.1121/10.0001995.

Abstract

This article presents an experimental and numerical parametric study of the acoustical properties of monodisperse open-cell solid foam. Solid foam samples are produced with very good control of both the pore size (from 0.2 to 1.0 mm) and the solid volume fraction (from 6% to 35%). Acoustical measurements are performed by the three-microphone impedance tube method. From these measurements, the visco-thermal parameters-namely, viscous permeability, tortuosity, viscous characteristic length, thermal permeability, and thermal characteristic length-are determined for an extensive number of foam samples. By combining Surface Evolver and finite-element method calculations, the visco-thermal parameters of body centered cubic (bcc) foam numerical samples are also calculated on the whole range of solid volume fraction (from 0.5% to 32%), compared to measured values and to theoretical model predictions [Langlois et al. (2019). Phys. Rev. E 100(1), 013115]. Numerical results are then used to find approximate formulas of visco-thermal parameters. A systematic comparison between measurements and predictions of the Johnson-Champoux-Allard-Lafarge (JCAL) model using measured visco-thermal parameters as input parameters, reveals a consistent agreement between them. From this first step, a calculation of the optimal microstructures maximizing the sound absorption coefficient is performed.

摘要

本文介绍了对单分散开孔固体泡沫声学特性的实验和数值参数研究。制备的固体泡沫样品对孔径(从0.2到1.0毫米)和固体体积分数(从6%到35%)都有很好的控制。声学测量通过三传声器阻抗管法进行。通过这些测量,确定了大量泡沫样品的粘热参数,即粘性渗透率、曲折度、粘性特征长度、热渗透率和热特征长度。通过结合表面演化器和有限元法计算,还计算了体心立方(bcc)泡沫数值样品在整个固体体积分数范围(从0.5%到32%)内的粘热参数,并与测量值和理论模型预测值进行了比较[Langlois等人(2019年)。《物理评论E》100(1),013115]。然后利用数值结果找到粘热参数的近似公式。以测量的粘热参数作为输入参数,对Johnson-Champoux-Allard-Lafarge(JCAL)模型的测量值和预测值进行系统比较,结果显示两者之间具有一致的一致性。从这第一步开始,进行了使吸声系数最大化的最佳微观结构计算。

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