Cages and anomalous diffusion in vibrated dense granular media
Abstract
A vertically shaken granular medium hosts a blade rotating around a fixed vertical axis, which acts as a mesorheological probe. At high densities, independently from the shaking intensity, the blade's dynamics show strong caging effects, marked by transient sub-diffusion and a maximum in the velocity power density spectrum (vpds), at a resonant frequency Hz. Interpreting the data through a diffusing harmonic cage model allows us to retrieve the elastic constant of the granular medium and its collective diffusion coefficient. For high frequencies , a tail in the vpds reveals non-trivial correlations in the intra-cage micro-dynamics. At very long times (larger than s), a super-diffusive behavior emerges, ballistic in the most extreme cases. Consistently, the distribution of slow velocity inversion times displays a power-law decay, likely due to persistent collective fluctuations of the host medium.
Cite
@article{arxiv.1504.07528,
title = {Cages and anomalous diffusion in vibrated dense granular media},
author = {Camille Scalliet and Andrea Gnoli and Andrea Puglisi and Angelo Vulpiani},
journal= {arXiv preprint arXiv:1504.07528},
year = {2015}
}
Comments
5 pages + 4 page of supplemental material, 6 figures, to be published on Phys. Rev. Lett