Broadband sound attenuation at low frequency ranges (below 500 Hz) has been a challenge in the acoustics field which cannot be solved, via conventional materials, unless impractical amounts of mass are employed. Multiresonant Layered Acoustic Metamaterials (MLAM) offer exceptional attenuating properties at lower frequencies, through novel coupled resonances mechanisms, in a layered configuration that make them amenable for large-scale manufacturing. To show the potential capabilities of MLAM, a novel computational design strategy has been developed to optimize the metamaterials’ performance in terms of their Sound Transmission Loss (STL). First, a multiscale homogenization framework specifically derived for MLAM allows an accurate and extre...
The so called Locally Resonant Acoustic Metamaterials (LRAM) are a new kind of artificially engineer...
\u3cp\u3eLow frequency sound attenuation is a challenging task, because of the severe mass, stiffnes...
An acoustic metamaterial absorber of parallel–connection square Helmholtz resonators is proposed in ...
The so-called Locally Resonant Acoustic Metamaterials (LRAM) are considered for the design of specif...
The notion of metamaterials as artificially engineered structures designed to obtain specific materi...
Plate-type acoustic metamaterials (PAM) consist of a thin film with multiple periodically attached m...
One of the most common problems in noise control is the attenuation of low frequency noise. Typical ...
One of the most common problems in noise control is the attenuation of low frequency noise. Typical ...
Computational Material design is a new research line in which the classical paths of choosing existi...
To achieve the broadband sound absorption at low frequencies within a limited space, an optimal desi...
Much effort has been made to experimentally fabricate acoustic metamaterials that display novel prop...
During the past decade, materials that display novel properties in the acoustic realm, so-called aco...
As much of metamaterials’ properties originate from resonances, the novel characteristics disp...
The increasing popularity of sandwich and composite double panel structures stems from their better ...
The so called Locally Resonant Acoustic Metamaterials (LRAM) are a new kind of artificially engineer...
\u3cp\u3eLow frequency sound attenuation is a challenging task, because of the severe mass, stiffnes...
An acoustic metamaterial absorber of parallel–connection square Helmholtz resonators is proposed in ...
The so-called Locally Resonant Acoustic Metamaterials (LRAM) are considered for the design of specif...
The notion of metamaterials as artificially engineered structures designed to obtain specific materi...
Plate-type acoustic metamaterials (PAM) consist of a thin film with multiple periodically attached m...
One of the most common problems in noise control is the attenuation of low frequency noise. Typical ...
One of the most common problems in noise control is the attenuation of low frequency noise. Typical ...
Computational Material design is a new research line in which the classical paths of choosing existi...
To achieve the broadband sound absorption at low frequencies within a limited space, an optimal desi...
Much effort has been made to experimentally fabricate acoustic metamaterials that display novel prop...
During the past decade, materials that display novel properties in the acoustic realm, so-called aco...
As much of metamaterials’ properties originate from resonances, the novel characteristics disp...
The increasing popularity of sandwich and composite double panel structures stems from their better ...
The so called Locally Resonant Acoustic Metamaterials (LRAM) are a new kind of artificially engineer...
\u3cp\u3eLow frequency sound attenuation is a challenging task, because of the severe mass, stiffnes...
An acoustic metamaterial absorber of parallel–connection square Helmholtz resonators is proposed in ...