Band gaps of elastic waves in three-dimensional piezoelectric phononic crystals with initial stress

From MaRDI portal
Publication:2034267

DOI10.1016/j.euromechsol.2009.09.005zbMath1480.74161OpenAlexW1984062651MaRDI QIDQ2034267

Feng-Ming Li, Yi-Ze Wang, Yue-Sheng Wang, Kikuo Kishimoto, Wen-Hu Huang

Publication date: 21 June 2021

Published in: European Journal of Mechanics. A. Solids (Search for Journal in Brave)

Full work available at URL: https://doi.org/10.1016/j.euromechsol.2009.09.005



Related Items

Active tunability of band gaps for a novel elastic metamaterial plate, Band gaps of elastic waves in 1-D phononic crystal with dipolar gradient elasticity, Dual-tuning mechanism for elastic wave transmission in a triatomic lattice with string stiffening, Application of plane wave expansion and stiffness matrix methods to study transmission properties and guided mode of phononic plates, Analytical modeling of fluid loaded orthogonally rib-stiffened sandwich structures: sound transmission, Rayleigh-type wave propagation in incompressible visco-elastic media under initial stress, Petrov-Galerkin method for the band structure computation of anisotropic and piezoelectric phononic crystals, Dispersion feature of elastic waves in a 1-D phononic crystal with consideration of couple stress effects, Dispersion relations of elastic waves in three-dimensional cubical piezoelectric phononic crystal with initial stresses and mechanically and dielectrically imperfect interfaces, Actively controllable flexural wave band gaps in beam-type acoustic metamaterials with shunted piezoelectric patches, Vibration analysis and active control of nearly periodic two-span beams with piezoelectric actuator/sensor pairs, Flexural wave propagation in periodic micropolar-Cosserat panels: spectral element formulation, Hybrid Bragg-locally resonant bandgap behaviors of a new class of motional two-dimensional meta-structure, Magnetically tunable bandgaps in phononic crystal nanobeams incorporating microstructure and flexoelectric effects



Cites Work