4.6 Article

Customized shaping of vibration modes by acoustic metamaterial synthesis

Journal

SMART MATERIALS AND STRUCTURES
Volume 27, Issue 4, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/1361-665X/aaad9f

Keywords

piezoelectric metamaterial; inductive circuitry; bandgap; effective resonant cavity; vibration modes; mode shaping; adaptivity

Funding

  1. NSF [CMMI-1544707]

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Acoustic metamaterials have attractive potential in elastic wave guiding and attenuation over specific frequency ranges. The vast majority of related investigations are on transient waves. In this research we focus on stationary wave manipulation, i. e., shaping of vibration modes. Periodically arranged piezoelectric transducers shunted with inductive circuits are integrated to a beam structure to form a finite-length metamaterial beam. We demonstrate for the first time that, under a given operating frequency of interest, we can facilitate a metamaterial design such that this frequency becomes a natural frequency of the integrated system. Moreover, the vibration mode corresponding to this natural frequency can be customized and shaped to realize tailored/ localized response distribution. This is fundamentally different from previous practices of utilizing geometry modification and/ or feedback control to achieve mode tailoring. The metamaterial design is built upon the combinatorial effects of the bandgap feature and the effective resonant cavity feature, both attributed to the dynamic characteristics of the metamaterial beam. Analytical investigations based on unit-cell dynamics and modal analysis of the metamaterial beam are presented to reveal the underlying mechanism. Case illustrations are validated by finite element analyses. Owing to the online tunability of circuitry integrated, the proposed mode shaping technique can be online adjusted to fit specific requirements. The customized shaping of vibration modes by acoustic metamaterial synthesis has potential applications in vibration suppression, sensing enhancement and energy harvesting.

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