HR: 08:00h
AN: T51A-01 INVITED [PDF]
TI: A Thermo-Mechanical Model of the San Andreas Fault System in Central and Northern California
AU: * Sobolev, S V
EM: stephan@gfz-potsdam.de
AF: GeoForschungsZentrum-Potsdam, Telegrafenberg, Potsdam, 14473
Germany
AU: Zoback, M D
EM: zoback@pangea.stanford.edu
AF: Stanford University, Mitchell Building, room 359, Stanford, CA 94305-2215 United States
AU: Babeyko, A Y
EM: babeyko@gfz-potsdam.de
AF: GeoForschungsZentrum-Potsdam, Telegrafenberg, Potsdam, 14473
Germany
AB:
The San Andreas Fault System (SAFS) in central and northern California is a family of sub-parallel strike-slip faults that
accommodate the transform motion between the Pacific and the North America plates. We present here a fully coupled numerical
thermo-mechanical model of the SAFS as it evolved over the past 20 Myr following the northward migration of the Mendocino
triple junction. The strike-slip displacements and fault perpendicular compression (over the last 5 Myr) are implemented as
side boundary conditions in the upper 20 km of the 100 km deep model box, other parts of the side boundaries and bottom
boundary being free for material flow. The model employs realistic visco-elasto-plastic rheology and allows for spontaneous
generation of faults. The modeling replicates the evolution of multiple strike-slip faults, the overall eastern migration of
the San Andreas fault itself from the western edge of the Coast Ranges near Cape Mendocino to the eastern edge in central
California, the variation of heat flow in the Coast ranges along and across the SAFS as well as high angle (60-80$\deg$)
between the direction of the maximum horizontal stress and the local fault orientation in the upper crust. The modeling shows
that the key conditions for such behavior are the cooling (and strengthening) of the lithosphere following passage of the
triple junction which causes ductile deformation at depth to migrate eastward with time and the drop of frictional strength
at high strain in the upper crust which results in a small number of major transform faults to develop, rather than a broad
distribution of such faults. Our modeling suggests that the major faults in the SAFS in Central and Northern California must
have been weak during most of the 20 Myr period over which it evolved.
DE: 3210 Modeling
DE: 3230 Numerical solutions
DE: 8120 Dynamics of lithosphere and mantle--general
DE: 8158 Plate motions--present and recent (3040)
DE: 8159 Rheology--crust and lithosphere
SC: Tectonophysics [T]
MN: 2003 Fall Meeting