Locally resonant acoustic metamaterial (LRAM) panels are excellent candidates for the low-frequency flexural wave attenuation in thin structures. To enable the efficient analysis and design of LRAM beam/shell structural elements for practical applications, a computational homogenization method for modelling wave propagation phenomena in LRAM panels is presented in this work. The approach is based on the notion of a relaxed separation of scales, which tailors the methodology to the phenomena governed by local resonators embedded in a host medium. The macroscopic LRAM panel is modelled as a thin continuum beam/shell described by proper structural kinematics and momentum balance relations. At the microscale, a LRAM unit cell is considered with...
The aim of this review is to give an overview of techniques and methods used in the modeling of acou...
\u3cp\u3eAcoustic metafoams are novel materials recently proposed for low frequency sound attenuatio...
Broadband sound attenuation at low frequency ranges (below 500 Hz) has been a challenge in the acous...
Locally resonant acoustic metamaterial (LRAM) panels are excellent candidates for the low-frequency ...
The so-called Locally Resonant Acoustic Metamaterials (LRAM) are considered for the design of specif...
The so called Locally Resonant Acoustic Metamaterials (LRAM) are a new kind of artificially engineer...
Locally resonant acoustic metamaterial (LRAM) panel designs have been regarded as potential solution...
This contribution presents a novel homogenization technique for modeling heterogeneous materials wit...
The notion of metamaterials as artificially engineered structures designed to obtain specific materi...
This work presents a novel multiscale semi-analytical technique for the acoustic plane wave analysis...
A framework, based on an extended Hill–Mandel principle accounting for inertial effects (Multiscale ...
The aim of this review is to give an overview of techniques and methods used in the modeling of acou...
\u3cp\u3eAcoustic metafoams are novel materials recently proposed for low frequency sound attenuatio...
Broadband sound attenuation at low frequency ranges (below 500 Hz) has been a challenge in the acous...
Locally resonant acoustic metamaterial (LRAM) panels are excellent candidates for the low-frequency ...
The so-called Locally Resonant Acoustic Metamaterials (LRAM) are considered for the design of specif...
The so called Locally Resonant Acoustic Metamaterials (LRAM) are a new kind of artificially engineer...
Locally resonant acoustic metamaterial (LRAM) panel designs have been regarded as potential solution...
This contribution presents a novel homogenization technique for modeling heterogeneous materials wit...
The notion of metamaterials as artificially engineered structures designed to obtain specific materi...
This work presents a novel multiscale semi-analytical technique for the acoustic plane wave analysis...
A framework, based on an extended Hill–Mandel principle accounting for inertial effects (Multiscale ...
The aim of this review is to give an overview of techniques and methods used in the modeling of acou...
\u3cp\u3eAcoustic metafoams are novel materials recently proposed for low frequency sound attenuatio...
Broadband sound attenuation at low frequency ranges (below 500 Hz) has been a challenge in the acous...