English

Robust collimated beaming in 3D acoustic sonic crystals

Applied Physics 2023-01-25 v1

Abstract

We demonstrate strongly collimated beaming, at audible frequencies, in a three-dimensional acoustic phononic crystal where the wavelength is commensurate with the crystal elements; the crystal is a seemingly simple rectangular cuboid constructed from closely-spaced spheres, and yet demonstrates rich wave phenomena acting as a canonical three-dimensional metamaterial. We employ theory, numerical simulation and experiments to design and interpret this collimated beaming phenomenon and use a crystal consisting of a finite rectangular cuboid array of 4×10×104\times 10\times 10 polymer spheres 1.381.38~cm in diameter in air, arranged in a primitive cubic cell with the centre-to-centre spacing of the spheres, i.e. the pitch, as 1.51.5~cm. Collimation effects are observed in the time domain for chirps with central frequencies at 14.214.2~kHz and 1818~kHz, and we deployed a laser feedback interferometer or Self-Mixing Interferometer (SMI) -- a recently proposed technique to observe complex acoustic fields -- that enables experimental visualisation of the pressure field both within the crystal and outside of the crystal. Numerical exploration using a higher-order multi-scale finite element method designed for the rapid and detailed simulation of 3D wave physics further confirms these collimation effects and cross-validates with the experiments. Interpretation follows using High Frequency Homogenization and Bloch analysis whereby the different origin of the collimation at these two frequencies is revealed by markedly different isofrequency surfaces of the sonic crystal.

Keywords

Cite

@article{arxiv.2301.09973,
  title  = {Robust collimated beaming in 3D acoustic sonic crystals},
  author = {A. L. Vanel and M. Dubois and C. Tronche and S. Fu and Y. -T. Wang and G. Dupont and A. D. Rakić and K. Bertling and R. Abdeddaim and S. Enoch and R. V. Craster and G. Li and S. Guenneau and J. Perchoux},
  journal= {arXiv preprint arXiv:2301.09973},
  year   = {2023}
}

Comments

10 pages, 8 figures

R2 v1 2026-06-28T08:18:35.777Z