HR: 09:15h
AN: T31D-06 [Abstracts]
TI: Rapid Reduction in Subducting Plate Strength in the Kermadec Trench: A New Application of Admittance
Analysis Using Trench-Parallel Profiles
AU: * Billen, M I
EM: billen@geology.ucdavis.edu
AF: University of California, Davis, Department of Geology
One Shields Avenue, Davis, CA 95616
United States
AU: Gurnis, M
EM: gurnis@gps.caltech.edu
AF: California Institute of Technology, Seismological Laboratory
1200 E. California Blvd, Pasadena, CA 91125
United States
AB:
Wide-spread faulting apparent in seafloor bathymetry and seismic reflection profiles, as well as the occurrence of large
lithosphere-scale normal faulting events in trenches, suggest that subducting plates suffer significant permanent deformation
at shallow depths. Deformation of lithospheric plates in subduction zones may account for a substantial fraction of the
total energy dissipation associated with plate motion, reducing plate strength through permanent deformation, and thus
regulating plate speeds by limiting the coupling of slab-pull forces to plates at the surface. However, plate-bending
analysis of trench-perpendicular profiles are not sensitive to variations in plate strength, and do not provide a unique
constraint on even average plate strength as elastic, elastic-plastic and viscous plate models are all able to reproduce
trench-forebulge topography. We use 1D admittance analysis employing multitaper spectral estimates of a series of adjacent
trench-parallel bathymetry and gravity anomaly profiles to measure the change in flexural response of a subducting plate
within a trench. This method provides a robust constraint on the magnitude and length-scale of the reduction in plate
strength for profiles of ~1000 km long, while overcoming the challenges posed by the large aspect ratio of the
subduction environment and steep trench topography. Application to the Kermadec Trench, using four trench-parallel profiles,
reveals a rapid reduction in plate strength, characterized by a drop in flexural rigidity by a factor of 1000 between the
forebulge and trench-axis, equivalent to a 15--20 km decrease in effective elastic thickness. Our results indicate that an
appropriate rheology for the subducting plate would allow for complete loss of elastic strength of the plate within 100 km of
the trench axis, and therefore slab-plate coupling occurs through viscous stresses and trench-forebulge topography is a
dynamic feature.
DE: 3010 Gravity and isostasy (1218, 1222)
DE: 3045 Seafloor morphology, geology, and geophysics
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
DE: 8159 Rheology: crust and lithosphere (8031)
DE: 8170 Subduction zone processes (1031, 3060, 3613, 8413)
SC: Tectonophysics [T]
MN: Fall Meeting 2005