Sound absorption performance of composite structures from a kind of lightweight ceramic foam with perforated plate

IF 1.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
P.S. Liu, S. Song, J.X. Sun
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Abstract

PurposeThe purpose of this paper is mainly to know: (1) the sound absorption coefficient of porous composite structures constituted by a new kind of lightweight ceramic foam and perforated plate; (2) the availability of an equivalent porous material model, recently proposed by the present author, to these composite structures in sound absorption.Design/methodology/approachA kind of lightweight ceramic foam with bulk density of 0.38–0.56 g·cm-3 was produced by means of molding, drying and sintering. The effect of stainless steel perforated plate on sound absorption performance of the ceramic foam was investigated by means of JTZB absorption tester.FindingsThe results indicate that the sound absorption performance could be obviously changed by adding the stainless steel perforated plate in front of the porous samples and the air gap in back of the porous samples. Adding the perforated plate to the porous sample with a relatively large pore size, the sound absorption performance could be evidently improved for the composite structure. When the air gap is added to the composite structure, the first absorption peak shifts to the lower frequency, and the sound absorption coefficient could increase in the low frequency range.Originality/valueBased on the equivalent porous material model and the “perforated plate with air gap” model, the sound absorption performance of the composite structures can be simulated conveniently to a great extent by using Johnson-Champoux-Allard model.
一种轻质多孔板泡沫陶瓷复合结构吸声性能研究
本文的主要目的是了解:(1)一种新型轻质陶瓷泡沫与多孔板构成的多孔复合结构的吸声系数;(2)本文作者最近提出的一种等效多孔材料模型的有效性,用于这些复合材料结构的吸声。设计/方法/方法采用成型、干燥、烧结等方法制备了体积密度为0.38 ~ 0.56 g·cm-3的轻质陶瓷泡沫材料。采用JTZB吸声仪研究了不锈钢多孔板对陶瓷泡沫吸声性能的影响。结果表明,在多孔材料前加不锈钢穿孔板,在多孔材料后加气隙,可以明显改变多孔材料的吸声性能。在孔径较大的多孔材料中加入穿孔板,可以明显提高复合材料的吸声性能。当复合材料结构中加入气隙时,第一吸收峰向低频偏移,在低频范围内吸声系数增大。基于等效多孔材料模型和“带气隙的穿孔板”模型,Johnson-Champoux-Allard模型可以在很大程度上方便地模拟复合材料结构的吸声性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
60
期刊介绍: Multidiscipline Modeling in Materials and Structures is published by Emerald Group Publishing Limited from 2010
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