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Published July 2018 | Submitted + Supplemental Material + Published
Journal Article Open

Accordion-like metamaterials with tunable ultra-wide low-frequency band gaps

Abstract

Composite materials with engineered band gaps are promising solutions for wave control and vibration mitigation at various frequency scales. Despite recent advances in the design of phononic crystals and acoustic metamaterials, the generation of wide low-frequency band gaps in practically feasible configurations remains a challenge. Here, we present a class of lightweight metamaterials capable of strongly attenuating low-frequency elastic waves, and investigate this behavior by numerical simulations. For their realization, tensegrity prisms are alternated with solid discs in periodic arrangements that we call 'accordion-like' meta-structures. They are characterized by extremely wide band gaps and uniform wave attenuation at low frequencies that distinguish them from existing designs with limited performance at low-frequencies or excessively large sizes. To achieve these properties, the meta-structures exploit Bragg and local resonance mechanisms together with decoupling of translational and bending modes. This combination allows one to implement selective control of the pass and gap frequencies and to reduce the number of structural modes. We demonstrate that the meta-structural attenuation performance is insensitive to variations of geometric and material properties and can be tuned by varying the level of prestress in the tensegrity units. The developed design concept is an elegant solution that could be of use in impact protection, vibration mitigation, or noise control under strict weight limitations.

Additional Information

© 2018 The Author(s). Published by IOP Publishing Ltd on behalf of Deutsche Physikalische Gesellschaft. Original content from this work may be used under the terms of the Creative Commons Attribution 3.0 licence. Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI. Received 5 April 2018; Accepted 13 July 2018; Accepted Manuscript online 13 July 2018; Published 31 July 2018. AA, FB, NMP, and FF acknowledge financial support from the Italian Ministry of Education, University and Research (MIUR) under the 'Departments of Excellence' grant L.232/2016. NMP is supported by the European Commission under the Graphene Flagship Core 2 grant No. 785219 (WP14 'Composites') and with FB by the FET Proactive 'Neurofibres' grant No. 732344. FB also acknowledges the support by Progetto d'Ateneo/Fondazione San Paolo 'Metapp', n. CSTO160004.

Attached Files

Published - Krushynska_2018_New_J._Phys._20_073051.pdf

Submitted - 1804.02188.pdf

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Created:
August 19, 2023
Modified:
October 18, 2023