HR: 11:50h
AN: U22A-06 [Abstracts]
TI: Sumatra-Andaman Megathrust Earthquake Slip: Insights From Mechanical Modeling of ICESat Surface
Deformation Measurements
AU: Harding, D J
EM: david.j.harding@nasa.gov
AF: NASA Goddard Space Flight Center, Mail Code 698, Greenbelt, MD 20771
United States
AU: * Miuller, J R
EM: jmuller@core2.gsfc.nasa.gov
AF: NASA Goddard Space Flight Center, Mail Code 698, Greenbelt, MD 20771
United States
AB:
Modeling the kinematics of the 2004 Great Sumatra-Andaman earthquake is limited in the northern two-thirds of the rupture
zone by a scarcity of near-rupture geodetic deformation measurements. Precisely repeated Ice, Cloud, and Land Elevation
Satellite (ICESat) profiles across the Andaman and Nicobar Islands provide a means to more fully document the spatial pattern
of surface vertical displacements and thus better constrain geomechanical modeling of the slip distribution. ICESat profiles
that total ~45 km in length cross Car Nicobar, Kamorta, and Katchall in the Nicobar chain. Within the Andamans, the
coverage includes ~350 km on North, Central, and South Andaman Islands along two NNE and NNW-trending profiles that provide
elevations on both the east and west coasts of the island chain. Two profiles totaling ~80 km in length cross South Sentinel
Island, and one profile ~10 km long crosses North Sentinel Island. With an average laser footprint spacing of 175 m, the
total coverage provides over 2700 georeferenced surface elevations measurements for each operations period. Laser
backscatter waveforms recorded for each footprint enable detection of forest canopy top and underlying ground elevations with
decimeter vertical precision. Surface elevation change is determined from elevation profiles, acquired before and after the
earthquake, that are repeated with a cross-track separation of less than 100 m by precision pointing of the ICESat
spacecraft. Apparent elevation changes associated with cross-track offsets are corrected according to local slopes
calculated from multiple post-earthquake repeated profiles. The surface deformation measurements recorded by ICESat are
generally consistent with the spatial distribution of uplift predicted by a preliminary slip distribution model. To predict
co-seismic surface deformation, we apply a slip distribution, derived from the released energy distribution computed by Ishii
et al. (2005), as the displacement discontinuity boundary condition on the Sumatra-Andaman subduction interface fault. The
direction of slip on the fault surface is derived from the slip directions computed by Tsai et al. (in review) for centroid
moment tensor focal mechanisms spatially distributed along the rupture. The slip model will be refined to better correspond
to the observed surface deformation as additional results from the ICESat profiles become available.
DE: 1209 Tectonic deformation (6924)
DE: 1240 Satellite geodesy: results (6929, 7215, 7230, 7240)
DE: 7240 Subduction zones (1207, 1219, 1240)
DE: 8118 Dynamics and mechanics of faulting (8004)
DE: 8170 Subduction zone processes (1031, 3060, 3613, 8413)
SC: Union [U]
MN: Fall Meeting 2005