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Updated: Feb 7, 2026

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Published on: August 1, 2011
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Intermittency between avalanche regimes on grain piles
1Department of Applied Mathematics and Theoretical Physics, University of Cambridge, Wilberforce Road, Cambridge, CB3 0WA, United Kingdom.
Physical Review. E
|July 18, 2018
Summary
This study reveals two distinct avalanche behaviors in granular materials, one regular and one irregular with power-law distributions. These findings apply to pharmaceutical and geophysical granular flows.
Area of Science:
- Experimental physics
- Granular material dynamics
- Complex systems
Background:
- Granular avalanches exhibit complex behaviors, often studied in the context of self-organized criticality.
- Understanding intermittency and power-law distributions is crucial for predicting granular flow phenomena.
Purpose of the Study:
- To experimentally investigate discrete grain avalanches driven by a low inflow rate.
- To characterize the different regimes of avalanche behavior and their underlying mechanisms.
- To explore potential applications and theoretical connections to existing models of granular dynamics.
Main Methods:
- Experimental setup involving an erodible pile in a channel with a controlled low inflow rate.
- Observation and analysis of avalanche intermittency, periodicity, and size distributions.
- Development of a toy model to explain power-law size distributions in specific avalanche regimes.
Main Results:
- Observed two distinct avalanche regimes: quasiperiodic and system-spanning, versus irregular with power-law size distribution.
- Demonstrated that the pile's surface state dictates avalanche front propagation.
- Confirmed robustness of observations across different inflow rates and grain types without parameter tuning.
Conclusions:
- The study identifies key factors governing avalanche behavior in granular systems.
- Findings suggest potential applications in pharmaceutical and geophysical granular flows.
- Provides a framework for reconciling self-organized criticality with hysteretic behavior in granular avalanches.
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