4.7 Article

Enhanced vibration suppression using diatomic acoustic metamaterial with negative stiffness mechanism

期刊

ENGINEERING STRUCTURES
卷 271, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.engstruct.2022.114939

关键词

Locally resonant acoustic metamaterial; Diatomic chain; Negative stiffness; Low -frequency wave attenuation; Vibration suppression; Power flow analysis

资金

  1. National Natural Science Foundation of China (NSFC) [12172185]
  2. Zhejiang Provincial National Science Foundation of China [LY22A020006]
  3. State Key Laboratory of Performance Monitoring and Protecting of Rail Transit Infrastructure of China [HJGZ2021106]

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This paper presents a diatomic-chain locally resonant acoustic metamaterial (LRAM) structure with a negative stiffness mechanism for enhanced vibration suppression. By studying the bandgap properties of the diatomic configuration, it is shown that introducing two extra bandgaps can enhance performance benefits. Converting a monoatomic configuration into a diatomic configuration is beneficial. A dispersion relation analysis reveals new phenomena in vibration power flow and wave transmittance, demonstrating the potential application of negative stiffness for performance improvement.
This paper presents a diatomic-chain locally resonant acoustic metamaterial (LRAM) structure with negative -stiffness mechanism for enhanced suppression of vibration transmission. The bandgap properties of the diatomic configuration were studied and shown to enhance performance benefits by introducing two extra bandgaps that exploit Bragg scattering, located on both sides of the local resonant bandgap. The upper band -folding-induced bandgap exhibits better performance than the lower band-folding-induced bandgap. Convert-ing a monoatomic configuration into a diatomic configuration is shown to be beneficial. A dispersion relation analysis is performed and new phenomena are revealed from the viewpoint of the vibration power flow and wave transmittance, demonstrating the potential application of negative stiffness for performance improvement. A geometrical nonlinear mechanism is studied, and the results demonstrate the possibility of providing a constant negative stiffness under specific material parameters. With the application of this negative-stiffness mechanism for the critical, effective stiffness value, the locally resonant bandgap of the metamaterial configuration shifted toward the lower frequency range, effective from zero frequency, thus achieving ultralow frequency vibration control. The proposed implementation of the negative-stiffness mechanism in a diatomic metamaterial structure is shown to yield desirable bandgap properties, providing potential benefits for vibration suppression.

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