We present a design method for calculating and optimizing sound absorption coefficient of multi-layered porous fibrous metals (PFM) in the low frequency range. PFM is simplified as an equivalent idealized sheet with all metallic fibers aligned in one direction and distributed in periodic hexagonal patterns. We use a phenomenological model in the literature to investigate the effects of pore geometrical parameters (fiber diameter and gap) on sound absorption performance. The sound absorption coefficient of multi-layered PFMs is calculated using impedance translation theorem. To demonstrate the validity of the present model, we compare the predicted results with the experimental data. With the average sound absorption (low frequency range) as...
International audienceThis presentation examines a perforated resonant material, in which the princi...
International audienceA perfect absorber, i.e., a structure which absorbs 100% of the incident ac...
Composite structures can be designed with specific parameters for efficient sound absorption in spec...
AbstractWe present a design method for calculating and optimizing sound absorption coefficient of mu...
International audienceA variety of performance demands are increasingly being placed on sound absorb...
International audienceThe acoustic properties of an air-saturated porous material depend on its micr...
The combination structure of a porous metal and microperforated panel was optimized to develop a low...
Wilson's poroacoustic model has been shown to be an accurate predictor of sound absorption in porous...
It is well-established that wool and glass fibers are good absorbers for noise-control in air. Howev...
Sound absorption performance of a porous metal can be improved by compression and optimal permutatio...
[EN] We present the conditions to observe perfect sound absorption by rigidly-backed layers of rigid...
Porous metal materials are widely used in noise control with high sound pressure applications such a...
In this work, theoretical models have been developed for predicting the acoustical properties of fib...
It is well known that a large air space is needed when we absorb sound in low frequencies by using p...
This thesis investigates the microstructure influence on the acoustical properties ofmulti-scale por...
International audienceThis presentation examines a perforated resonant material, in which the princi...
International audienceA perfect absorber, i.e., a structure which absorbs 100% of the incident ac...
Composite structures can be designed with specific parameters for efficient sound absorption in spec...
AbstractWe present a design method for calculating and optimizing sound absorption coefficient of mu...
International audienceA variety of performance demands are increasingly being placed on sound absorb...
International audienceThe acoustic properties of an air-saturated porous material depend on its micr...
The combination structure of a porous metal and microperforated panel was optimized to develop a low...
Wilson's poroacoustic model has been shown to be an accurate predictor of sound absorption in porous...
It is well-established that wool and glass fibers are good absorbers for noise-control in air. Howev...
Sound absorption performance of a porous metal can be improved by compression and optimal permutatio...
[EN] We present the conditions to observe perfect sound absorption by rigidly-backed layers of rigid...
Porous metal materials are widely used in noise control with high sound pressure applications such a...
In this work, theoretical models have been developed for predicting the acoustical properties of fib...
It is well known that a large air space is needed when we absorb sound in low frequencies by using p...
This thesis investigates the microstructure influence on the acoustical properties ofmulti-scale por...
International audienceThis presentation examines a perforated resonant material, in which the princi...
International audienceA perfect absorber, i.e., a structure which absorbs 100% of the incident ac...
Composite structures can be designed with specific parameters for efficient sound absorption in spec...