Tunable piezoelectric metamaterial for Lamb waves using periodic shunted circuits
David R. Schipf, Matthew D. Guild, Caleb F. Sieck

TL;DR
This paper introduces an approximate analytical model for piezoelectric metamaterials with shunted circuits, enabling prediction of band gaps and effective wave properties in finite plates, with potential for electrical tunability and negative stiffness applications.
Contribution
The authors develop a two-dimensional analytical model for finite piezoelectric plates with shunted circuits, improving upon existing methods by accurately predicting band gaps and effective properties.
Findings
Model predicts band diagram with less than 10% error compared to FEA.
Effective wavenumber swings indicate negative stiffness behavior.
Shunted circuit plates can be electrically tuned for desired wave control.
Abstract
Piezoelectric elastic metamaterials offer the ability to overcome the fixed, narrow bandwidth characteristics of passive elastic metamaterials. Interesting ultrasonic band gaps exist in piezoelectric plate metamaterials with periodic electrodes connected to shunted circuits. These band gaps result from an avoided crossing between electrical and mechanical bands, and can arise at lower frequencies than Bloch wave band gaps. Current analytical modeling techniques for these systems are numerically cumbersome, and assume an infinitely periodic plate. We present an approximate two-dimensional analytical model that can be used to directly calculate scattering coefficients for finite length plates. This model is shown to predict a band diagram that compares well with diagrams obtained from finite element analysis (FEA). Lower than 10% difference in the estimation of the location of the band…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsAcoustic Wave Phenomena Research · Acoustic Wave Resonator Technologies · Railway Engineering and Dynamics
