Analysis of structural-acoustic coupling characteristics of rectangular enclosure with different parameters

被引:1
作者
机构
[1] School of Mechanical Engineering, Southeast University
来源
Zhang, J. (zhangjr@seu.edu.cn) | 1600年 / Southeast University卷 / 43期
关键词
Coupling characteristics; Modal decay time; Resonance frequency; Transfer factor;
D O I
10.3969/j.issn.1001-0505.2013.03.011
中图分类号
学科分类号
摘要
A free-vibration model of an acoustic-structural coupled system is built using the modal coupling analysis method. The influences of enclosure depth on resonance frequencies and modal decay time of the structural-acoustic coupling system are analyzed. The change of energy transfer, resonance frequencies, and decay time of the coupling system in panel and enclosure modes is analyzed in detail. The analysis results of panel and rectangular enclosure coupling system are presented. When the enclosure depth is changed, there are two factors which affect the transfer factor between enclosure and panel modes, including enclosure depth and the difference between their resonance frequencies. Near the enclosure depth of strong coupling between the enclosure mode and panel mode, the resonance frequencies of the enclosure-controlled mode and the panel-controlled mode have a phenomenon of jump. While on the enclosure depth of strong coupling between the enclosure mode and the panel mode, the energy flow between enclosure field and the vibration of panel is the largest, and their modal decay time tends to be equal to each other.
引用
收藏
页码:503 / 508
页数:5
相关论文
共 11 条
[1]  
Fahy F.J., Gardonio P., Sound and Structural Vibration Radiation, Transmission and Response, pp. 418-427, (2007)
[2]  
Yao H., Zhang J., Chen N., Et al., Analysis of structural-acoustic coupling of elastic rectangular enclosure with arbitrary boundary conditions, Acta Acustica, 32, 6, pp. 497-502, (2007)
[3]  
Yao H., Zhang J., Chen N., Et al., Modeling and analysis of sound radiation of elastic rectangular enclosure, Journal of Southeast University: Natural Science Edition, 35, 6, pp. 889-893, (2005)
[4]  
Luo C., Rao Z., Zhao M., Analysis of structural-acoustic coupling of an enclosure using Green function method, Journal of Vibration Engineering, 17, 3, pp. 296-300, (2004)
[5]  
Pan J., Bies D.A., The effect of fluid-structural coupling on sound waves in an enclosure-theoretical part, Journal of the Acoustical Society of America, 87, 2, pp. 691-707, (1990)
[6]  
Kim S.-M., Brennan M.J., A compact matrix formulation using the impedance and mobility approach for the analysis of structural-acoustic system, Journal of Sound and Vibration, 223, 1, pp. 97-113, (1999)
[7]  
Jin G., Yang T., Liu Z., Et al., Analysis of structural-acoustic coupling of an enclosure surrounded by flexible panel, Acta Acustica, 32, 2, pp. 178-188, (2007)
[8]  
Pan J., Hansen C.H., Bies D.A., Active control of noise transmission through a panel into a cavity: I. Analytical study, Journal of the Acoustical Society of America, 87, 5, pp. 2098-2108, (1990)
[9]  
Pan J., Hansen C.H., Active control of noise transmission through a panel into a cavity. III: Effect of the actuator location, Journal of the Acoustical Society of America, 90, 3, pp. 1493-1501, (1991)
[10]  
Kim S.M., Brennan M.J., Active control of harmonic sound transmission into an acoustic enclosure using both structural and acoustic actuators, Journal of the Acoustical Society of America, 107, 5, pp. 2523-2534, (1999)