Vibration-induced "thermally activated" jamming transition in granular media
Abstract
The quasi-static frequency response of a granular medium is measured by a forced torsion oscillator method, with forcing frequency in the range Hz to 5 Hz, while weak vibrations at high-frequency , in the range 50 Hz to 200 Hz, are generated by an external shaker. The intensity of vibration, , is below the fluidization limit. A loss factor peak is observed in the oscillator response as a function of or . In a plot of against , the position of the peak follows an Arrhenius-like behaviour over four orders of magnitude in . The data can be described as a stochastic hopping process involving a probability factor with a -dependent characteristic vibration intensity. A -independent description is given by , with an intrinsic characteristic time, and , n=0.5-0.6, an empirical control parameter with unit of time. is seen as the effective average time during which the perturbed grains can undergo structural rearrangement. The loss factor peak appears as a crossover in the dynamic behaviour of the vibrated granular system, which, at the time-scale , is solid-like at low , and the oscillator is jammed into the granular material, and is fluid-like at high , where the oscillator can slide viscously.
Keywords
Cite
@article{arxiv.cond-mat/0006323,
title = {Vibration-induced "thermally activated" jamming transition in granular media},
author = {G. D'Anna and G. Gremaud},
journal= {arXiv preprint arXiv:cond-mat/0006323},
year = {2009}
}
Comments
Final version to appear in PRE