Exact predictions from Edwards ensemble vs. realistic simulations of tapped narrow two-dimensional granular columns
arXiv:1311.1069 · doi:10.1088/1742-5468/2013/12/P12012
Abstract
We simulate via a Discrete Element Method the tapping of a narrow column of disk under gravity. For frictionless disks, this system has a simple analytic expression for the density of states in the Edwards volume ensemble. We compare the predictions of the ensemble at constant compactivity against the results for the steady states obtained in the simulations. We show that the steady states cannot be properly described since the microstates sampled are not in correspondence with the predicted distributions, suggesting that the postulates of flat measure and ergodicity are, either or both, invalid for this simple realization of a static granular system. However, we show that certain qualitative features of the volume fluctuations difficult to predict from simple arguments are captured by the theory.
11 pages, 6 figures
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- Ergodic-nonergodic transition in tapped granular systems: The role of persistent contacts
- Arch-based configurations in the volume ensemble of static granular systems
- Interacting jammed granular systems