MODELING OF PERIODIC GREAT EARTHQUAKES ON THE SAN-ANDREAS FAULT - EFFECTS OF NONLINEAR CRUSTAL THEOLOGY

被引:21
作者
RECHES, Z
SCHUBERT, G
ANDERSON, C
机构
[1] UNIV CALIF LOS ANGELES, DEPT EARTH & SPACE SCI, LOS ANGELES, CA 90024 USA
[2] UNIV CALIF LOS ANGELES, DEPT GEOPHYS & PLANETARY PHYS, LOS ANGELES, CA 90024 USA
[3] LOS ALAMOS NATL LAB, LOS ALAMOS, NM USA
关键词
D O I
10.1029/94JB00334
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
We analyze the cycle of great earthquakes along the San Andreas fault with a finite element numerical model of deformation in a crust with a nonlinear viscoelastic theology. The viscous component of deformation has an effective viscosity that depends exponentially on the inverse absolute temperature and nonlinearly on the shear stress; the elastic deformation is linear. Crustal thickness and temperature are constrained by seismic and heat flow data for California. The models are for anti plane strain in a 25-km-thick crustal layer having a very long, vertical strike-slip fault; the crustal block extends 250 km to either side of the fault. During the earthquake cycle that lasts 160 years, a constant plate velocity v(p)/2 = 17.5 mm yr(-1) is applied to the base of the crust and to the vertical end of the crustal block 250 km away from the fault. The upper half of the fault is locked during the interseismic period, while its lower half slips; at the constant plate velocity. The locked part of the fault is moved abruptly 2.8 m every 160 years to simulate great earthquakes. The results are sensitive to crustal theology. Models with quartzite-like theology display profound transient stages in the velocity, displacement, and stress fields. The predicted transient zone extends about 3-4 times the crustal thickness on each side of the fault, significantly wider than the zone of deformation in elastic models. Models with diabase-like theology behave similarly to elastic models and exhibit no transient stages. The model predictions are compared with geodetic observations of fault-parallel velocities in northern and central California and local rates of shear strain along the San Andreas fault. The observations are best fit by models which are 10-100 times less viscous than a quartzite-like theology. Since the lower crust in California is composed of intermediate to mafic rocks, the present result;suggests that the in situ viscosity of the crustal rock is orders of magnitude less the rock viscosity determined in the laboratory.
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收藏
页码:21983 / 22000
页数:18
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