This paper proposes an I-shaped radial elastic metamaterial with ultra-low-frequency broadband characteristics and studies the propagation characteristics of elastic waves in their quasi-static state. Through the calculation of the dispersion relationship, the frequency response function, and the eigenmode displacement field, it is found that the ultra-low-frequency wide band gap can be generated in the quasi-static metamaterial. The wide band gap is mainly caused by modal transitions. The equivalent mass–spring model reveals the modal changes of the I-shaped radial elastic metamaterial under the surface constraints. Furthermore, by studying the directional vibration displacement field of the finite period structure, it is demonstrated that...
Periodic media and resonant, acoustic/elastic metamaterials possess extraordinary frequency band gap...
We propose a new nonlinear elastic metamaterial which shows tunable bandgap at quasi-static frequenc...
To achieve wave control at broad-band ultra-low frequencies, we design »accordion-like» meta-structu...
Despite enormous efforts being invested in the elastic wave's band gap, achieving a broadband l...
Achieving stop band over broadband at low-frequency range has remained a great scientific challenge ...
The metamaterials applications for protecting buildings by manipulating seismic waves, such as nucle...
Introducing a negative-stiffness mechanism (NSM) into a traditional linear resonator to form a high-...
Metamaterials realizing stop bands have attracted much attentions recently since they can break-thro...
Structural vibration induced by low frequency elastic waves presents a great threat to infrastructur...
This paper investigates a modified acoustic metamaterial system with local resonators coupled throug...
© 2019 Author(s). A metamaterial rod with resonators containing negative-stiffness (NS) mechanisms i...
Frequency dependent mechanical properties of elastic metamaterials with locally resonant microstruct...
In this paper, the low-frequency band gap mechanism of torsional vibration is investigated for a kin...
The narrow bandwidth is a significant limitation of elastic metamaterials for practical engineering ...
The terms “acoustic/elastic meta-materials” describe a class of periodic structures with unit cells ...
Periodic media and resonant, acoustic/elastic metamaterials possess extraordinary frequency band gap...
We propose a new nonlinear elastic metamaterial which shows tunable bandgap at quasi-static frequenc...
To achieve wave control at broad-band ultra-low frequencies, we design »accordion-like» meta-structu...
Despite enormous efforts being invested in the elastic wave's band gap, achieving a broadband l...
Achieving stop band over broadband at low-frequency range has remained a great scientific challenge ...
The metamaterials applications for protecting buildings by manipulating seismic waves, such as nucle...
Introducing a negative-stiffness mechanism (NSM) into a traditional linear resonator to form a high-...
Metamaterials realizing stop bands have attracted much attentions recently since they can break-thro...
Structural vibration induced by low frequency elastic waves presents a great threat to infrastructur...
This paper investigates a modified acoustic metamaterial system with local resonators coupled throug...
© 2019 Author(s). A metamaterial rod with resonators containing negative-stiffness (NS) mechanisms i...
Frequency dependent mechanical properties of elastic metamaterials with locally resonant microstruct...
In this paper, the low-frequency band gap mechanism of torsional vibration is investigated for a kin...
The narrow bandwidth is a significant limitation of elastic metamaterials for practical engineering ...
The terms “acoustic/elastic meta-materials” describe a class of periodic structures with unit cells ...
Periodic media and resonant, acoustic/elastic metamaterials possess extraordinary frequency band gap...
We propose a new nonlinear elastic metamaterial which shows tunable bandgap at quasi-static frequenc...
To achieve wave control at broad-band ultra-low frequencies, we design »accordion-like» meta-structu...