Acoustic wave polarization and energy flow in periodic beam lattice materials
Andrea Bacigalupoa, Marco Lepidi

TL;DR
This paper investigates how acoustic waves propagate and carry energy in periodic beam lattice materials, introducing polarization measures and energy flux analysis, with applications to tetrachiral microstructures.
Contribution
It develops a comprehensive framework for analyzing wave polarization and energy flow in nondissipative microstructured materials using a beam lattice model.
Findings
Polarization factors quantify wave polarization states.
Energy flux relates to wave velocity and group velocity.
Application to tetrachiral microstructure validates the theory.
Abstract
The free propagation of acoustic plane waves through cellular periodic materials is generally accompanied by a flow of mechanical energy across the adjacent cells. The paper focuses on the energy transport related to dispersive waves propagating through nondissipative microstructured materials. The generic microstructure of the periodic cell is described by a beam lattice model, suitably reduced to the minimal space of dynamic degrees-of-freedom. The linear eigenproblem governing the wave propagation is stated and the complete eigensolution is considered to study both the real-valued dispersion functions and the complex-valued waveforms of the propagating elastic waves. First, a complete family of nondimensional quantities (polarization factors) is proposed to quantify the linear polarization or quasi-polarization, according to a proper energetic criterion. Second, a vector variable…
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Taxonomy
TopicsAcoustic Wave Phenomena Research · Numerical methods in engineering · Ultrasonics and Acoustic Wave Propagation
