TY - JOUR
T1 - Universal Quake Statistics
T2 - From Compressed Nanocrystals to Earthquakes
AU - Uhl, Jonathan T.
AU - Pathak, Shivesh
AU - Schorlemmer, Danijel
AU - Liu, Xin
AU - Swindeman, Ryan
AU - Brinkman, Braden A.W.
AU - LeBlanc, Michael
AU - Tsekenis, Georgios
AU - Friedman, Nir
AU - Behringer, Robert
AU - Denisov, Dmitry
AU - Schall, Peter
AU - Gu, Xiaojun
AU - Wright, Wendelin J.
AU - Hufnagel, Todd
AU - Jennings, Andrew
AU - Greer, Julia R.
AU - Liaw, P. K.
AU - Becker, Thorsten
AU - Dresen, Georg
AU - Dahmen, Karin A.
N1 - Publisher Copyright:
© 2015, Nature Publishing Group. All rights reserved.
PY - 2015/11/17
Y1 - 2015/11/17
N2 - Slowly-compressed single crystals, bulk metallic glasses (BMGs), rocks, granular materials, and the earth all deform via intermittent slips or "quakes". We find that although these systems span 12 decades in length scale, they all show the same scaling behavior for their slip size distributions and other statistical properties. Remarkably, the size distributions follow the same power law multiplied with the same exponential cutoff. The cutoff grows with applied force for materials spanning length scales from nanometers to kilometers. The tuneability of the cutoff with stress reflects "tuned critical" behavior, rather than self-organized criticality (SOC), which would imply stress-independence. A simple mean field model for avalanches of slipping weak spots explains the agreement across scales. It predicts the observed slip-size distributions and the observed stress-dependent cutoff function. The results enable extrapolations from one scale to another, and from one force to another, across different materials and structures, from nanocrystals to earthquakes.
AB - Slowly-compressed single crystals, bulk metallic glasses (BMGs), rocks, granular materials, and the earth all deform via intermittent slips or "quakes". We find that although these systems span 12 decades in length scale, they all show the same scaling behavior for their slip size distributions and other statistical properties. Remarkably, the size distributions follow the same power law multiplied with the same exponential cutoff. The cutoff grows with applied force for materials spanning length scales from nanometers to kilometers. The tuneability of the cutoff with stress reflects "tuned critical" behavior, rather than self-organized criticality (SOC), which would imply stress-independence. A simple mean field model for avalanches of slipping weak spots explains the agreement across scales. It predicts the observed slip-size distributions and the observed stress-dependent cutoff function. The results enable extrapolations from one scale to another, and from one force to another, across different materials and structures, from nanocrystals to earthquakes.
UR - https://www.scopus.com/pages/publications/84947716999
U2 - 10.1038/srep16493
DO - 10.1038/srep16493
M3 - Article
AN - SCOPUS:84947716999
SN - 2045-2322
VL - 5
JO - Scientific Reports
JF - Scientific Reports
M1 - 16493
ER -