Citation

BibTex format

@article{Colombi:2016:10.1038/srep25320,
author = {Colombi, A and Guenneau, S and Roux, P and Craster, RV},
doi = {10.1038/srep25320},
journal = {Scientific Reports},
title = {Transformation seismology: composite soil lenses for steering surface elastic Rayleigh waves.},
url = {http://dx.doi.org/10.1038/srep25320},
volume = {6},
year = {2016}
}

RIS format (EndNote, RefMan)

TY  - JOUR
AB - Metamaterials are artificially structured media that exibit properties beyond those usually encountered in nature. Typically they are developed for electromagnetic waves at millimetric down to nanometric scales, or for acoustics, at centimeter scales. By applying ideas from transformation optics we can steer Rayleigh-surface waves that are solutions of the vector Navier equations of elastodynamics. As a paradigm of the conformal geophysics that we are creating, we design a square arrangement of Luneburg lenses to reroute Rayleigh waves around a building with the dual aim of protection and minimizing the effect on the wavefront (cloaking). To show that this is practically realisable we deliberately choose to use material parameters readily available and this metalens consists of a composite soil structured with buried pillars made of softer material. The regular lattice of inclusions is homogenized to give an effective material with a radially varying velocity profile and hence varying the refractive index of the lens. We develop the theory and then use full 3D numerical simulations to conclusively demonstrate, at frequencies of seismological relevance 3-10 Hz, and for low-speed sedimentary soil (vs: 300-500 m/s), that the vibration of a structure is reduced by up to 6 dB at its resonance frequency.
AU - Colombi,A
AU - Guenneau,S
AU - Roux,P
AU - Craster,RV
DO - 10.1038/srep25320
PY - 2016///
SN - 2045-2322
TI - Transformation seismology: composite soil lenses for steering surface elastic Rayleigh waves.
T2 - Scientific Reports
UR - http://dx.doi.org/10.1038/srep25320
UR - http://hdl.handle.net/10044/1/32726
VL - 6
ER -