Title of article :
Stress Correlation Function Evolution in Lattice Solid Elasto-dynamic Models of Shear and Fracture Zones and Earthquake Prediction
Author/Authors :
P. Mora، نويسنده , , D. Place ، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2002
Abstract :
It has been argued that power-law time-to-failure fits for cumulative Benioff strain and an
evolution in size-frequency statistics in the lead-up to large earthquakes are evidence that the crust behaves
as a Critical Point (CP) system. If so, intermediate-term earthquake prediction is possible. However, this
hypothesis has not been proven. If the crust does behave as a CP system, stress correlation lengths should
grow in the lead-up to large events through the action of small to moderate ruptures and drop sharply once
a large event occurs. However this evolution in stress correlation lengths cannot be observed directly. Here
we show, using the lattice solid model to describe discontinuous elasto-dynamic systems subjected to shear
and compression, that it is for possible correlation lengths to exhibit CP-type evolution. In the case of a
granular system subjected to shear, this evolution occurs in the lead-up to the largest event and is
accompanied by an increasing rate of moderate-sized events and power-law acceleration of Benioff strain
release. In the case of an intact sample system subjected to compression, the evolution occurs only after a
mature fracture system has developed. The results support the existence of a physical mechanism for
intermediate-term earthquake forecasting and suggest this mechanism is fault-system dependent. This
offers an explanation of why accelerating Benioff strain release is not observed prior to all large
earthquakes. The results prove the existence of an underlying evolution in discontinuous elasto-dynamic
systems which is capable of providing a basis for forecasting catastrophic failure and earthquakes
Keywords :
Numerical simulation , critical point hypothesis forearthquakes , lattice solid model , earthquake prediction , stress correlation function evolution
Journal title :
Pure and Applied Geophysics
Journal title :
Pure and Applied Geophysics