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Sound transmission of an active acoustic structure with porous materials based on the(u,p) formulation 被引量:3

Sound transmission of an active acoustic structure with porous materials based on the(u,p) formulation
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摘要 A method based on the combination of the (u,p) formulation and finite element method was applied to calcu^ati^g the acoust^cM performance of a double-wall active acoustic structure with porous materials. The (u, p) formulation based on the displacement in solid phase and the pressure in fluid phase was developed to investigate the sound propagation in porous materials. The acoustic performance of the double-wM1 active acoustic structure having porous materials was calculated and the measurement was taken. The numerical results matched well with the measured data. More than 10 dB transmission loss of the double-wall active acoustic structure can be improved in the resonance frequency with active control, and its absorption coefficient is up to 0.6 over 500 Hz. The relative error between the prediction and measurement is less than 5% at the resonance frequency of the porous materials. A method based on the combination of the (u,p) formulation and finite element method was applied to calcu^ati^g the acoust^cM performance of a double-wall active acoustic structure with porous materials. The (u, p) formulation based on the displacement in solid phase and the pressure in fluid phase was developed to investigate the sound propagation in porous materials. The acoustic performance of the double-wM1 active acoustic structure having porous materials was calculated and the measurement was taken. The numerical results matched well with the measured data. More than 10 dB transmission loss of the double-wall active acoustic structure can be improved in the resonance frequency with active control, and its absorption coefficient is up to 0.6 over 500 Hz. The relative error between the prediction and measurement is less than 5% at the resonance frequency of the porous materials.
出处 《Chinese Journal of Acoustics》 2012年第1期1-17,共17页 声学学报(英文版)
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