Numerical Investigation of Ultra-Wide Low-Frequency Wave Attenuation Using Seismic Metamaterials with Auxetic Slender Strips DOI Creative Commons
Haosheng Liu, Hongbo Zhang

Crystals, Journal Year: 2024, Volume and Issue: 15(1), P. 13 - 13

Published: Dec. 26, 2024

Seismic metamaterials are an emerging vibration-damping technology, yet concentrating the bandgap in low-frequency range remains challenging due to constraints imposed by lattice size. In this study, we numerically investigated seismic connected auxetic (negative Poisson’s ratio) slender strips, which exhibit exceptionally wide band gap for vibration isolation. Using a finite element method, first performed comparative analysis of several representative metamaterial configurations. The results showed that thin strip-connected steel column structure demonstrated outstanding performance, with complete starting at 1.61 Hz, ending 80.40 spanning width 78.79 and achieving relative bandwidth 192.15%. Notably, while most existing designs feature constants ten-meter (with smallest around two meters), our proposed achieves these constant only one meter. We further analyzed transmission characteristics structure, both without concrete filling. Interestingly, significant attenuation, approaching 70 dB, was observed below (approximately 0.22–1.17 Hz), even use concrete. By comparing flexural wave spectrum, attributed attenuation primarily presence gap, phenomenon often overlooked previous studies. This lower frequencies highlights potential effectively reducing energy. To enhance number periods propagation direction can be increased. Additionally, systematically explored influence geometric parameters on gap. found optimal were achieved strip length 0.05 m, its between 0.1 m. Our findings underscore critical role strips broadband approach presented along discovery gaps, provides valuable insights engineering other applications requiring effective reduction strategies.

Language: Английский

Topological rainbow trapping and broadband piezoelectric energy harvesting of acoustic waves in gradient phononic crystals with coupled interfaces DOI
Xiaolei Tang,

Xue-Qian Zhang,

Tian-Xue Ma

et al.

Applied Acoustics, Journal Year: 2025, Volume and Issue: 233, P. 110630 - 110630

Published: Feb. 27, 2025

Language: Английский

Citations

1

Enabling sequential logic leveraging time delays of thin-walled soft matter DOI

Nan Yang,

K. Huang,

Zheng Qian

et al.

Thin-Walled Structures, Journal Year: 2025, Volume and Issue: 209, P. 112968 - 112968

Published: Jan. 16, 2025

Language: Английский

Citations

0

Elastic dislocation states of full-polarization micromechanical metamaterials DOI
Yuyang Chen,

Boqing Lei,

Ying Wu

et al.

Thin-Walled Structures, Journal Year: 2025, Volume and Issue: unknown, P. 113270 - 113270

Published: April 1, 2025

Language: Английский

Citations

0

A quasi-zero-stiffness metastructure for concurrent low-frequency vibration attenuation and energy harvesting DOI

Yaoqiang Shu,

Kai Wang, Tingting Chen

et al.

Thin-Walled Structures, Journal Year: 2025, Volume and Issue: unknown, P. 113371 - 113371

Published: April 1, 2025

Language: Английский

Citations

0

Wave propagation characteristics of controllable gyroscopic chiral metamaterials DOI
Zhenkun Guo, Ding Zhu, Guoqing Jiang

et al.

Mechanical Systems and Signal Processing, Journal Year: 2025, Volume and Issue: 233, P. 112811 - 112811

Published: May 1, 2025

Language: Английский

Citations

0

Numerical Investigation of Ultra-Wide Low-Frequency Wave Attenuation Using Seismic Metamaterials with Auxetic Slender Strips DOI Creative Commons
Haosheng Liu, Hongbo Zhang

Crystals, Journal Year: 2024, Volume and Issue: 15(1), P. 13 - 13

Published: Dec. 26, 2024

Seismic metamaterials are an emerging vibration-damping technology, yet concentrating the bandgap in low-frequency range remains challenging due to constraints imposed by lattice size. In this study, we numerically investigated seismic connected auxetic (negative Poisson’s ratio) slender strips, which exhibit exceptionally wide band gap for vibration isolation. Using a finite element method, first performed comparative analysis of several representative metamaterial configurations. The results showed that thin strip-connected steel column structure demonstrated outstanding performance, with complete starting at 1.61 Hz, ending 80.40 spanning width 78.79 and achieving relative bandwidth 192.15%. Notably, while most existing designs feature constants ten-meter (with smallest around two meters), our proposed achieves these constant only one meter. We further analyzed transmission characteristics structure, both without concrete filling. Interestingly, significant attenuation, approaching 70 dB, was observed below (approximately 0.22–1.17 Hz), even use concrete. By comparing flexural wave spectrum, attributed attenuation primarily presence gap, phenomenon often overlooked previous studies. This lower frequencies highlights potential effectively reducing energy. To enhance number periods propagation direction can be increased. Additionally, systematically explored influence geometric parameters on gap. found optimal were achieved strip length 0.05 m, its between 0.1 m. Our findings underscore critical role strips broadband approach presented along discovery gaps, provides valuable insights engineering other applications requiring effective reduction strategies.

Language: Английский

Citations

0