Highly Nonlinear Wave Propagation in Elastic Woodpile Periodic Structures
Abstract
In the present work, we experimentally implement, numerically compute with and theoretically analyze a configuration in the form of a single column woodpile periodic structure. Our main finding is that a Hertzian, locally-resonant, woodpile lattice offers a test bed for the formation of genuinely traveling waves composed of a strongly-localized solitary wave on top of a small amplitude oscillatory tail. This type of wave, called a nanopteron, is not only motivated theoretically and numerically, but are also visualized experimentally by means of a laser Doppler vibrometer. This system can also be useful for manipulating stress waves at will, for example, to achieve strong attenuation and modulation of high-amplitude impacts without relying on damping in the system.
Keywords
Cite
@article{arxiv.1411.7062,
title = {Highly Nonlinear Wave Propagation in Elastic Woodpile Periodic Structures},
author = {E. Kim and F. Li and C. Chong and G. Theocharis and J. Yang and P. G. Kevrekidis},
journal= {arXiv preprint arXiv:1411.7062},
year = {2015}
}
Comments
The manuscript has 5 pages with 4 figures and the supplement material have 7 pages with 9 figures