Author/Authors :
Zhiping Song، نويسنده , , Xiangchu Yin، نويسنده , , Shirong Mei، نويسنده , , Yucang Wang، نويسنده , , Can Yin، نويسنده , , Huihui Zhang، نويسنده , , Langping Zhang ، نويسنده ,
Abstract :
Based on the three-dimensional elastic inclusion model proposed by Dobrovolskii, we
developed a rheological inclusion model to study earthquake preparation processes. By using the
Corresponding Principle in the theory of rheologic mechanics, we derived the analytic expressions of
viscoelastic displacement U(r, t) , V(r, t) and W(r, t), normal strains exx (r, t), eyy (r, t) and ezz (r, t)
and the bulk strain h (r, t) at an arbitrary point (x, y, z) in three directions of X axis, Y axis and
Z axis produced by a three-dimensional inclusion in the semi-infinite rheologic medium defined by
the standard linear rheologic model. Subsequent to the spatial-temporal variation of bulk strain
being computed on the ground produced by such a spherical rheologic inclusion, interesting results
are obtained, suggesting that the bulk strain produced by a hard inclusion change with time according
to three stages (a, b, c) with different characteristics, similar to that of geodetic deformation
observations, but different with the results of a soft inclusion. These theoretical results can be used to
explain the characteristics of spatial-temporal evolution, patterns, quadrant-distribution of earthquake
precursors, the changeability, spontaneity and complexity of short-term and imminent-term precursors.
It offers a theoretical base to build physical models for earthquake precursors and to predict the
earthquakes.