Low-frequency impedance tube: construction and validation

Authors

  • Rodolfo Thomazelli Faculdade de Engenharia Civil, Arquitetura e Urbanismo, Universidade Estadual de Campinas
  • Stelamaris Rolla Bertoli Faculdade de Engenharia Civil, Arquitetura e Urbanismo, Universidade Estadual de Campinas

DOI:

https://doi.org/10.55753/aev.v34e51.81

Keywords:

impedance tube, sound absorption, low frequency, Helmholtz absorbers

Abstract

For the determination of the sound absorption coefficients of acoustic materials there are established methods, such as those employed in reverberant room and impedance tube. For the development of sound absorption materials, the impedance tube methods - such as standing wave and transfer function - are more advantageous because they require comparatively smaller samples. The transfer function method is considered more practical for measurement processes as it allows the sound absorption coefficient to be obtained over a continuous frequency range. The authors of this paper are developing research on Helmholtz absorbers to operate at frequencies below 100 Hz. Due to the peculiarities of the object, for its acoustic characterization it was necessary to construct an impedance tube configured to receive the transfer function method, and able to meet the dimensions of the samples and the desired frequency range. This article aims to present the theoretical foundations and technical requirements that were used in the development of the apparatus, as well as the respective construction process. Also included in the article is the apparatus validation process, which showed that the experiments provides results with an average deviation of 1,9 Hz in relation to the predicted theoretical model.

References

INTERNATIONAL ORGANIZATION OF STANDARDIZATION. ISO 354 Acoustics - Measurement of sound absorption in a reverberation room. Genebra, Suiça, 2003.

INTERNATIONAL ORGANIZATION OF STANDARDIZATION. ISO 10534 Acoustics - Determination of sound absorption coefficient and impedance in impedance tubes - Part 1: Method using stand wave ratio. Genebra, Suiça, 2001.

INTERNATIONAL ORGANIZATION OF STANDARDIZATION. ISO 10534 Acoustics - Determination of sound absorption coefficient and impedance in impedance tubes - Part 2: Transfer-function method. Genebra, Suiça, 2001.

LI, Dengke; CHANG, Daoqing; LIU, Bilong. Enhancing the low frequency sound absorption of a perforated panel by parallel-arranged extended tubes. Applied Acoustics, v. 102, p. 126–132, 2016. doi: 10.1016/j.apacoust.2015.10.001 DOI: https://doi.org/10.1016/j.apacoust.2015.10.001

JIMéNEZ, N.; HUANG, W.; ROMEROGARCíA, V.; PAGNEUX, V.; GROBY, J.-P. Ultra-thin metamaterial for perfect and quasiomnidirectional sound absorption. Applied Physics Letters, v. 109, 2016. doi: 10.1063/1.4962328 DOI: https://doi.org/10.1063/1.4962328

WU, Xiaoxiao; FU, Caixing; LI, Xin; MENG, Yan; GAO, Yibo; TIAN, Jingxuan; WANG, Li; HUANG, Yingzhou; YANG, Zhiyu; WEN, Weijia. Low-frequency tunable acoustic absorber based on split tube resonators. Applied Physics Letters, v. 109, 2016. doi: 10.1063/1.4959959 DOI: https://doi.org/10.1063/1.4959959

XIAODAN, Zhao; XIANGQIAN, Fan. Enhancing low frequency sound absorption of micro-perforated panel absorbers by using mechanical impedance plates. Applied Acoustics, v. 88, p. 123–128, 2015. doi: 10.1007/s40857-021-00252-3 DOI: https://doi.org/10.1016/j.apacoust.2014.08.015

WANG, Weichen; WICK, Robert; HERRIN, D. W. Designer backings to improve microperforated panel absorber performance. Proceedings of the 44th Inter-Noise Congress and Exposition on Noise Control Engineering, 2015.

LARNER, David James; DAVY, John Laurence. The prediction of the diffuse field sound absorption of perforated panel systems. Proceedings of the 44th Inter-Noise Congress and Exposition on Noise Control Engineering, 2015.

DUPONT, Thomas; VERDIèRE, Kévin; LECLAIRE, Philippe; PANNETON, Raymond. A method to control the lateral boundary condition effects in the characterization of acoustic materials in an impedance tube. Proceedings of the 44th Inter-Noise Congress and Exposition on Noise Control Engineering, 2015.

COX, Trevor J.; D’ANTONIO, Peter. Acoustic absorbers and diffusers. USA: Spon Press, Inc., 2006. doi: 10.1201/9781482288254 DOI: https://doi.org/10.1201/9781482288254

OLDFIELD, R.; BECHWATI, F. Accurate low frequency impedance tube measurements. Proceedings of the Institute of Acoustics, v. 30, n. 4, 2008.

PARREIRA, Ricardo Jorge Patraquim Godinho. Painéis acústicos perfurados em madeira: estudo e avaliação experimental de soluções. Dissertação (Mestrado) — Instituto Superior Técnico, Universidade de Lisboa, 2008.

SOUZA, Albano Neves e; PATRAQUIM, Ricardo. Análise preliminar da viabilidade de ressoadores de helmholtz adaptáveis para optimização da resposta acústica de salas pequenas. Anais do VIII Congresso Ibero-americano de Acústica, 2012.

EVEREST, F. Alton; POHLMANN, Ken C. Master handbook of acoustics. USA: The McGraw-Hill Companies, Inc., 2009.

Capa - Tubo de impedância para baixas frequências: construção e validação

Published

2019-12-15

How to Cite

THOMAZELLI, R.; BERTOLI, S. R. Low-frequency impedance tube: construction and validation. Acoustics and Vibrations (Acústica e Vibrações), [S. l.], v. 34, n. 51, p. 59–71, 2019. DOI: 10.55753/aev.v34e51.81. Disponível em: https://acustica.emnuvens.com.br/acustica/article/view/aev51_tubo. Acesso em: 18 dec. 2024.