Analysis and optimization of bandgaps in plate-type metastructures with different configurations
摘要
Several types of acoustic metamaterial (AM) plates have been developed to achieve low-frequency and wide bandgaps, which are adjusted by their geometric configurations and material properties. This paper combines the classical plate theory and the characteristics of piezoelectric materials, and uses the plane wave expansion method (PWEM) to derive the bandgap theoretical model of plate-type metastructures. The dispersion curves of the structures composed of elastic materials, piezoelectric materials, and functionally graded (FG) materials are compared and studied, and verified with the finite element simulation results. Then, the effects of temperatures, piezoelectric parameters, scatterer shapes, scatterer distributions, scatterer tapers, rubber layers, and spiral groove configurations on the bandgap of plate-type metastructures are discussed, and the material and geometric parameters are optimized with the genetic algorithm (GA). This study provides a reference for the design of low-frequency broadband structures.