A new method to compute sound transmission loss by acoustic FEM

Author:

ISHIDA Sachiko1,MORIMURA Hiroaki2,GOTOU You3,HAGIWARA Ichiro1

Affiliation:

1. Meiji Institute for Advanced Study of Mathematical Sciences, Meiji University

2. Graduate School of Science and Engineering, Tokyo Institute of Technology

3. Shiroyama Kogyo Co. Ltd.

Publisher

Japan Society of Mechanical Engineers

Reference12 articles.

1. Buehrle, R. D., Robinson, J. H. and Grosveld, F. W., Vibroacoustic model validation for a curved honeycomb composite panel, Proceedings of the 42nd AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics and Materials Conference and Exhibit (2001), Paper No. AIAA-2001-1587.

2. Furuya, K., Yoshimura, T., Suto, A. and Narikuni, S., Optimality for sound pressure minimization in vibro-acoustic system and structural optimization, Transactions of the Japan Society of Mechanical Engineers, Series C, Vol.72, No.724 (2006), pp.3767-3774 (in Japanese).

3. Japanese Industrial Standards Committee, JIS A1416: Acoustics - Method for laboratory measurement of airborne sound insulation of building elements and JIS A1417: Acoustics - Field measurement of airborne sound insulation of buildings (online), available from <http://www.jisc.go.jp/app/JPS/JPSO0020.html>, (accessed on 6 November, 2013) (in Japanese).

4. Kusuda, S. and Inoue Y., Sound transmission loss of stiffness law for low frequency noise, Proceedings of the 15th Symposium on Environmental Engineering, The Japan Society of Mechanical Engineers (2005), pp.39-42 (in Japanese).

5. Muto, D. and Takano, Y., Effect of acoustic characteristics of gases on transmission loss of the doublewall structure, Transactions of the Japan Society of Mechanical Engineers, Series C, Vol. 74, No. 746 (2008), pp. 2495-2503 (in Japanese).

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