Estimating effective acoustic properties of various configuration of perforated panels

IF 0.3 4区 工程技术 Q4 ACOUSTICS
J. Dandsena
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引用次数: 0

Abstract

Acoustic metamaterial attains uncommon material properties over natural material such as negative effective mass density, negative effective bulk modulus, or both. To start with, the present research demonstrates and establishes robust method to estimate and measure acoustic metamaterial properties of a Helmholtz resonator analytically using transfer matrix (TM) method and experimentally in detail. The proposed method extracts the reflection and transmission coefficients from corresponding TM to evaluate the effective acoustic metamaterial properties. For a single Helmholtz resonator, the effective bulk modulus has been observed negative; however, the effective density remains positive. In order to attain double negative material properties, the perforated panel (PP) and microperforated panel (MPP) have been introduced in parallel to resonator. The 1D electro-acoustic modeling has been carried out for all configurations to estimate effective properties analytically. Successively, the experiments have been conducted to measure the effective properties from acoustic metamaterial prospective. The analytical and experimental investigations on five different cases reveal that one can attain negative effective compressibility and effective density by cascading two PPs or MPPs with a finite duct. Moreover, by backing a Helmholtz resonator from both sides with two PPs or MPPs in parallel, one can attain double negative properties comparatively higher than earlier configuration in low-frequency zone in broadband. In total, eight different configurations have been investigated analytically and experimentally, where it has been demonstrated that the proposed compact model is more effective than a finite array of same Helmholtz resonators.
估算不同穿孔板结构的有效声学特性
声学超材料具有比天然材料更罕见的材料特性,如负有效质量密度,负有效体积模量,或两者兼有。首先,本研究展示并建立了一种鲁棒的方法,利用传递矩阵(TM)方法分析和实验详细地估计和测量亥姆霍兹谐振腔的声学超材料特性。该方法从相应的TM中提取反射系数和透射系数来评估有效声学超材料的性能。对于单个亥姆霍兹谐振腔,观察到有效体积模量为负;然而,有效密度仍然是正的。为了获得双负材料性能,将多孔板(PP)和微孔板(MPP)平行引入谐振腔。对所有结构进行了一维电声建模,以解析估计有效特性。随后,从声学超材料的角度对其有效性能进行了测量。对五种不同情况的分析和实验研究表明,两个PPs或MPPs在有限管道内级联可以获得负的有效压缩率和有效密度。此外,在宽带低频区,用两个平行的PPs或MPPs从两侧支撑亥姆霍兹谐振腔,可以获得比以前配置更高的双负特性。总共对八种不同的结构进行了分析和实验研究,结果表明,所提出的紧凑模型比有限阵列的相同亥姆霍兹谐振器更有效。
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
Noise Control Engineering Journal
Noise Control Engineering Journal 工程技术-工程:综合
CiteScore
0.90
自引率
25.00%
发文量
37
审稿时长
3 months
期刊介绍: NCEJ is the pre-eminent academic journal of noise control. It is the International Journal of the Institute of Noise Control Engineering of the USA. It is also produced with the participation and assistance of the Korean Society of Noise and Vibration Engineering (KSNVE). NCEJ reaches noise control professionals around the world, covering over 50 national noise control societies and institutes. INCE encourages you to submit your next paper to NCEJ. Choosing NCEJ: Provides the opportunity to reach a global audience of NCE professionals, academics, and students; Enhances the prestige of your work; Validates your work by formal peer review.
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