HR: 14:55h
AN: T13G-06 [Abstracts]
TI: Active mantle flow and crustal dynamics in southern California
AU: * Fay, N
EM: nfay@email.arizona.edu
AF: University of Arizona
Department of Geosciences, 1044 E 4th St, Tucson, AZ 85721, United States
AU: Bennett, R
EM: rab@geo.arizona.edu
AF: University of Arizona
Department of Geosciences, 1044 E 4th St, Tucson, AZ 85721, United States
AU: Spinler, J
EM: jspinler@email.arizona.edu
AF: University of Arizona
Department of Geosciences, 1044 E 4th St, Tucson, AZ 85721, United States
AB:
We present numerical modeling analysis of active upper mantle flow and its role in driving crustal deformation in
southern California. The forces driving lithospheric deformation at tectonic plate boundaries can be thought of as
the sum from two sources: (1) forces transmitted from the far-field by rigid tectonic plates, and (2) forces created
locally at the plate boundary by heterogeneous density distribution. Here we quantify the latter by estimating the
stresses acting on the base of the crust caused by density-driven flow of the upper mantle. Anomalous density
structure is derived from shear wave velocity models (Yang & Forsyth, 2006) and is used to drive instantaneous
incompressible viscous upper mantle flow relative to a fixed crust; this allows isolation of stresses acting on the
crust. Comparison of results with the finite element codes Abaqus (commercial) and GALE (community-
developed) is good. We find that horizontal tractions range from 0 to ~3 MPa and vertical tractions range between
approximately -15 to 15 MPa (negative indicating downward, positive upward); Absolute magnitudes depend on
the assumed velocity-density scaling relationship but the overall patterns of flow are more robust. Anomalous
density beneath the Transverse Ranges, in particular beneath the San Bernardino Mountains and offshore
beneath the Channel Islands, drives convergent horizontal tractions and negative vertical tractions on the base of
the crust there. Anomalous buoyancy beneath the southern Walker Lane Belt and anomalous density beneath
the southern Great Valley create a small convective cell (the Sierra Nevada "drip"), which promotes extension on
the eastern edge of the Sierra Nevada block and subsidence of the Great Valley. Favorable comparison with
contemporary crustal thickness, heat flow, and surface strain rate indicates that upper mantle flow plays a very
important role in active crustal deformation in southern California and much of the non-ideal behavior of this
transform boundary can be attributed to the heterogeneous density distribution-driven upper mantle flow.
DE: 6924 Interferometry (1207, 1209, 1242)
DE: 8106 Continental margins: transform
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8164 Stresses: crust and lithosphere
SC: Tectonophysics [T]
MN: 2007 Fall Meeting