HR: 0800h
AN: T31C-1319 [Abstracts]
TI: Structure and Deformation in the Transpressive Zone of Southern California Inferred from Seismicity,
Velocity, and Qp Models
AU: * Hauksson, E
EM: hauksson@gps.caltech.edu
AF: Caltech, Seismo Lab 252-21, Pasadena, CA 91125
United States
AU: Shearer, P
EM: pshearer@ucsd.edu
AF: Univ. of California, San Diego, Institute of Geophysics and Planetary Physics, LaJolla, CA 92093
United States
AB:
We synthesize relocated regional seismicity and 3D velocity and Qp models to infer structure and deformation in the
transpressive zone of southern California. These models provide a comprehensive synthesis of the tectonic fabric of the
upper to middle crust, and the brittle ductile transition zone that in some cases extends into the lower crust.
The regional seismicity patterns in southern California are brought into focus when the hypocenters are relocated using the
double difference method. In detail, often the spatial correlation between background seismicity and late Quaternary faults
is improved as the hypocenters become more clustered, and the spatial patterns are more sharply defined. Along some of the
strike-slip faults the seismicity clusters decrease in width and form alignments implying that in many cases the clusters are
associated with a single fault. In contrast, the Los Angeles Basin seismicity remains mostly scattered, reflecting a 3D
distribution of the tectonic compression. We present the results of relocating 327,000 southern California earthquakes that
occurred between 1984 and 2002. In particular, the depth distribution is improved and less affected by layer boundaries in
velocity models or other similar artifacts, and thus improves the definition of the brittle ductile transition zone.
The 3D V$_{P}$ and V$_{P}$/V$_{S}$ models confirm existing tectonic interpretations and provide new insights into the
configuration of the geological structures in southern California. The models extend from the US-Mexico border in the south
to the Coast Ranges and Sierra Nevada in the north, and have 15 km horizontal grid spacing and an average vertical grid
spacing of 4 km, down to 22 km depth. The heterogeneity of the crustal structure as imaged in both the V$_{P}$ and
V$_{P}$/V$_{S}$ models is larger within the Pacific than the North America plate, reflecting regional asymmetric variations
in the crustal composition and past tectonic processes. Similarly, the relocated seismicity is deeper and shows a more
complex 3D distribution in areas exhibiting compressional tectonics within the Pacific plate. The V$_{P}$ values are 0.2 to
0.4 km/s too high to support an abundant occurrence of schist beneath the Mojave Desert and the San Gabriel Mountains. The
models reflect mapped changes, from east to west, in the lithology of the Peninsular Ranges. The interface between the
shallow Moho of the Continental Borderland and the deep Moho of the continent forms a broad zone to the north beneath the
western Transverse Ranges, Ventura basin and the Los Angles Basin and a narrow zone to the south, along the Peninsular
Ranges.
Similarly, the 3D Qp model includes several features that correspond to regional tectonic features and possibly the thermal
structure of the southern California crust. A clear low Qp zone extends from the San Bernardino Basin, across the Chino
Basin, San Gabriel Valley, into the Los Angeles Basin. This zone is consistent with the geology and decreases with depth
from east to west. The Peninsular Ranges have a high Qp zone consistent with the high velocities in the 3D V$_{P}$ model.
There are also zones of high Qp in the southern Mojave and southern Sierras. Several clear transition zones of rapidly
varying Qp, extend across major late Quaternary faults and connect regions of high and low Qp. The strongest low Qp zone
coincides with the Salton Trough where near-surface low Qp is associated with the sediments and the deeper low Qp may be
associated with elevated mid-crustal temperatures.
DE: 8100 TECTONOPHYSICS
DE: 7200 SEISMOLOGY
DE: 7205 Continental crust (1242)
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting