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12 - Measurement Methods

Published online by Cambridge University Press:  11 May 2021

Erkan Dokumacı
Affiliation:
Dokuz Eylül University
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Summary

Chapter 12 describes the contemporary measurement methods in duct acoustics. Acoustic measurements are necessary in order to validate theoretical models and also to develop acoustic models when theoretical approaches tend to be inadequate or impossible. The multiple wall-mounted microphone method is introduced from first principles and its applications to the measurement of the characteristics of acoustic sources and of passive system elements are described.

Type
Chapter
Information
Duct Acoustics
Fundamentals and Applications to Mufflers and Silencers
, pp. 501 - 532
Publisher: Cambridge University Press
Print publication year: 2021

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References

Åbom, M., Modal decomposition in ducts based on transfer function measurements between microphone pairs, J. Sound Vib. 135 (1989) 95114.CrossRefGoogle Scholar
Åbom, M. and Bodén, H., Error analysis of two-microphone measurements in ducts with flow, J. Acoust. Soc. Am. 83 (1988), 24292438.CrossRefGoogle Scholar
Schultz, T., Sheplak, M. and Cattafesta, L.N. III, Uncertainty analysis of the two-microphone method, J. Sound Vib. 304 (2007), 91109.CrossRefGoogle Scholar
Jang, S.-H. and Ih, J.-G., On the multiple microphone method for measuring in-duct acoustic properties in the presence of mean flow, J. Acoust. Soc. Am. 103 (1998), 15201526.CrossRefGoogle Scholar
Chung, J.Y. and Blaser, D.A., Transfer function method of measuring in-duct acoustic properties. I. Theory, II. Experiment, J. Acoust. Soc. Am. 68 (1980) 907921.CrossRefGoogle Scholar
Allam, S. and Bodén, H., Methods for accurate determination of acoustic two-port data in flow ducts, ICSV12, Lisbon, Portugal, (2005).Google Scholar
Prony, R., Essai experimentale et analytique, Journal de l’École Polytechnique 1 (1795), 2426.Google Scholar
Hildebrand, F. B., Introduction to Numerical Analysis, (New York: McGraw-Hill, 1956).Google Scholar
Boden, H., Zhou, L., Cordioli, J., Medeiros, A. and Spillere, A., On the effect of flow direction on impedance eduction results, Proceedings of the 22nd AIAA-CEAS Aeroacoustics Conference, No. AIAA-2016-2727, Lyon, France, (2016).CrossRefGoogle Scholar
Beranek, L.L., Reynolds, J.L. and Wilson, K.E., Apparatus and procedures for predicting ventilation system noise, J. Acoust. Soc. Am. 25 (1953), 313321.CrossRefGoogle Scholar
Dunn, I. and Dawern, W., Calculation of acoustic impedance of multi-layer absorbers, Applied Acoustics, 19 (1986), 321334.CrossRefGoogle Scholar
Myers, K., Design of catenoidal shaped anechoic termination, (2012), Master’s thesis, 41, available online at http://scholarworks.wmich.edu/masters_theses/41.Google Scholar
Lung, T.Y. and Doige, A.G., A time averaging testing method for acoustic properties of piping systems and mufflers with flow, J. Acoust. Soc. Am. 73 (1983), 867876.CrossRefGoogle Scholar
Munjal, M.L. and Doige, A.G., Theory of a two-source-location method for direct experimental evaluation of the four-pole parameters of an aeroacoustic element, J. Sound Vib. 141 (1990), 323333.CrossRefGoogle Scholar
Åbom, M., Measurement of the scattering-matrix of acoustic two-ports, Mech. Syst. Signal Process. 5 (1991), 89104.Google Scholar
Bodén, H. and Åbom, M., Modeling of fluid machines as sources of sound in duct and pipe systems, Acta Acoustica 3 (1995), 549560.Google Scholar
Bodén, H. , Error analysis for the two-load method used to measure the source characteristics of fluid machines, J. Sound Vib. 126 (1988), 173177.CrossRefGoogle Scholar
Desmons, L., Hardy, J. and Auregan, Y., Determination of the acoustical source characteristics of an internal combustion engine by using several calibrated loads, J. Sound Vib. 179 (1995), 869878.CrossRefGoogle Scholar
Alves, H.S. and Doige, A.G., A three-load method for noise source characterization in ducts, Proc. NOISE-CON, 87, 329–334.Google Scholar
Zheng, S.F., Liu, H.T., Dan, J.B. and Lian, X.M., Analysis of the load selection on the error of source characteristics identification for an engine exhaust system, J. Sound Vib. 344 (2015) 126137.CrossRefGoogle Scholar
Macian, V., Torregrosa, A.J., Broatch, A., Niven, P.C. and Amphlett, S.A., A view on the internal consistency of linear source identification for IC engine exhaust noise prediction, Math. Comput. Model. 57 (2013) 18671875.CrossRefGoogle Scholar
Bodén, H. and Albertson, F., Linearity tests for in-duct one-port sources, J. Sound Vib. 237 (2000), 4565.Google Scholar
Kathuriya, M.L. and Munjal, M.L., Experimental evaluation of the aero-acoustic characteristics of a source of pulsating gas flow, J. Acoust. Soc. Am. 65 (1979), 240248.CrossRefGoogle Scholar
Prasad, M.G., A four load method for evaluation of acoustical source impedance in a duct, J. Sound Vib. 114 (1987), 347355.CrossRefGoogle Scholar
Sridhara, B.S. and Crocker, M.J., Error analysis for the four-load method used to measure the source impedance in ducts, J. Acoust. Soc. Am. 92 (1992), 29242931.CrossRefGoogle Scholar
Desmons, L. and Hardy, J., A least squares method for evaluation of characteristics of acoustical sources, J. Sound Vib. 175 (1994), 365376.CrossRefGoogle Scholar
Bodén, H., On multi-load methods for determination of the source data of acoustic one-port sources, J. Sound Vib. 180 (1995), 725743.Google Scholar
Jang, S.-H. and Ih, J.-G., Refined multiload method for measuring acoustical source characteristics of an intake and exhaust system, J. Acoust. Soc. Am. 107 (2000) 32173225.Google Scholar
Dokumaci, E., The fuzzy two-load method for measurement of ducted one-port sources, J. Sound Vib. 397 (2017), 3150.CrossRefGoogle Scholar
Dokumaci, E., On one-port characterization of noise sources in ducts by using external loads, J. Sound Vib. 260 (2003), 389402.Google Scholar
Lavrentjev, L., Åbom, M. and Bodén, H., A measurement method for determining the source data of acoustic two-port sources, J. Sound Vib. 183 (1993), 517531.CrossRefGoogle Scholar

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