HR: 0830h
AN: G31B-0704 [PDF]
TI: Block model of western US kinematics from inversion of geodetic, fault slip, and earthquake
data
AU: * McCaffrey, R
EM: mccafr@rpi.edu
AF: Rensselaer Polytechnic Institute, Department of Earth and Environmental Sciences, Troy, NY 12180-3590 United States
AB:
The active deformation of the southwestern US ($30\deg$ to $41\deg$N) is represented by a finite number of rotating, elastic
spherical caps. Horizontal GPS velocities (1583), fault slip rates (94), and earthquake slip vectors (116) are inverted for
block angular velocities, locking on block-bounding faults, and the rotation of individual GPS velocity fields relative to
North America. GPS velocities are modeled as a combination of rigid block rotations and elastic strain rates resulting from
interactions of adjacent blocks across bounding faults. The resulting Pacific - North America pole is indistinguishable from
that of Beavan et al. (2001) and satisfies spreading in the Gulf of California and earthquake slip vectors in addition to
GPS. The largest blocks, the Sierra Nevada - Great Valley and the eastern Basin and Range, show internal strain rates, after
removing the elastic component, of only a few nanostrain/a, demonstrating long term approximately rigid behavior. Most fault
slip data are satisfied except that the San Jacinto fault appears to be significantly faster than inferred from geology while
the Coachella and San Bernardino segments of the San Andreas fault are slower, suggesting the San Andreas system is
straightening out in Southern California. Vertical axis rotation rates for most blocks are clockwise and in magnitude more
like the Pacific than North America. One exception is the eastern Basin and Range ($242\deg$E to $248\deg$E) which rotates
slowly anticlockwise about a pole offshore Baja.
DE: 8107 Continental neotectonics
SC: Geodesy [G]
MN: 2003 Fall Meeting