Theory of acoustic band structure of periodic elastic composites

M. S. Kushwaha, P. Halevi, G. Martínez, L. Dobrzynski, and B. Djafari-Rouhani
Phys. Rev. B 49, 2313 – Published 15 January 1994
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Abstract

We study an elastic composite described by the position-dependent mass density ρ(r), the longitudinal speed of sound cl(r), and the transverse speed of sound ct(r). For a spatially periodic composite—a ‘‘phononic crystal’’—we derive the eigenvalue equation for the frequencies ωn(K), where n is the serial number of the band and K is the Bloch wave vector. This is applied to the special case of a binary composite and, further, to the case of infinite cylinders that form a two-dimensional lattice. For this configuration (and no wave-vector component parallel to the cylinders) there are two independent modes of vibration. The elastic displacement u(r) is parallel to the cylinders for one of them—the transverse polarization mode. The other one is a mixed (longitudinal-transverse) polarization mode with u(r) perpendicular to the cylinders. Specifically we consider circular cylinders that form a square lattice. We compute the band structures for the transverse modes of nickel alloy cylinders in an aluminum alloy host, and vice versa. In both situations we find band gaps which extend throughout the Brillouin zone. Within these gaps the transverse vibrations, sound, and phonons are forbidden. We also investigate the dependence of the band gap on the filling fraction and on the material parameters.

  • Received 24 August 1993

DOI:https://doi.org/10.1103/PhysRevB.49.2313

©1994 American Physical Society

Authors & Affiliations

M. S. Kushwaha, P. Halevi, and G. Martínez

  • Instituto de Física, Universidad Autónoma de Puebla, Apartado Postal J-48, Puebla 72570, Mexico

L. Dobrzynski and B. Djafari-Rouhani

  • Laboratoire de Dynamique et Structure de Materiaux Moleculaires, Centre National de la Recherche Scientifique, Universite de Lille I, U.F.R. de Physique-Bâtiment P5, 59655 Villeneuve D’Ascq Cedex, France

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Vol. 49, Iss. 4 — 15 January 1994

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