4.7 Article

Multifield nested metafilters for wave propagation control

Journal

EXTREME MECHANICS LETTERS
Volume 56, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.eml.2022.101885

Keywords

Multiscale acoustic metamaterial; Variational -asymptotic homogenization; Complex frequency spectrum; Band gap control; Piezoelectric shunting

Funding

  1. National Group of Mathematical Physics, Italy (GNFM-INdAM)
  2. University of Trento, Italy

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A novel class of multifield nested tunable metadevices is proposed as high performance acoustic metafilters. The designed metafilter has a multiscale, hierarchical structure, and the optimal filtering performance is achieved by adjusting the tuning parameter, paving the way for the design of sophisticated and topologically optimized acoustic filters.
The present work proposes a novel class of multifield nested tunable metadevices that serve as high performance acoustic metafilters. The designed metafilter is characterized by a multiscale, hierarchical structure. At the mesoscale, the metamaterial consists of a sequence of two different periodically alternating layers: a polymeric homogeneous layer, which exhibits a viscoelastic constitutive response, and a microstructured one. The latter is based on the periodic repetition of a multiphase microscale cell that is composed by a stiff elastic external coating, a viscoelastic phase and an internal disk of piezoelectric material shunted by an external electrical circuit having a tunable impedance/admittance This tuning parameter affects the constitutive elastic properties of the piezoelectric phase and, in turn, the overall response of the microscale cell, thereby ultimately enabling to achieve an optimal filtering performance for the metadevice. Due to the periodicity of the multiphase cell at the microscale, a two-scale variational-asymptotic homogenization technique is exploited in the frequency domain in order to obtain the frequency-dependent overall constitutive properties of the microstructured layer. Subsequently, in-plane free wave propagation inside the periodic multilayered metamaterial at the mesoscale is investigated by means of Floquet-Bloch theory, together with the transfer matrix method. By triggering the shunting effect, a stiffening of the piezoelectric phase can be achieved, which is demonstrated to open low frequency band gaps in the metamaterial frequency spectrum. The filtering capability of the metadevice has been assessed as a function of its geometrical features and the tuning parameter, thus paving the way towards the design of sophisticated and topologically optimized acoustic filters. (c) 2022 The Author(s). Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).

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