HR: 0800h
AN: S51B-0162 [Abstracts]
TI: 3-D Prestack Depth Imaging the Nankai Accretionary Wedge off Cape Muroto, Southwest Japan
AU: * Park, J
EM: jopark@jamstec.go.jp
AF: Institute for Research on Earth Evolution, Japan Agency for Marine-Earth Science and Technology, 3173-25
Showa-machi, Kanazawa-ku, Yokohama, 236-0001
Japan
AU: Tsuru, T
EM: tsurut@jamstec.go.jp
AF: Institute for Research on Earth Evolution, Japan Agency for Marine-Earth Science and Technology, 3173-25
Showa-machi, Kanazawa-ku, Yokohama, 236-0001
Japan
AU: Kaneda, Y
EM: kaneday@jamstec.go.jp
AF: Institute for Research on Earth Evolution, Japan Agency for Marine-Earth Science and Technology, 3173-25
Showa-machi, Kanazawa-ku, Yokohama, 236-0001
Japan
AB:
The Nankai Trough subduction zone off southwest Japan is one of the best-suited convergent plate margins for studying large
interplate subduction-zone earthquakes as well as the formation of accretionary prisms. At this margin, the Philippine Sea
Plate (PSP) is subducting beneath the Eurasian Plate (EP) to the NNW. The plate convergence rate is estimated to be 4 - 5
cm/yr. Large thrust earthquakes have repeatedly occurred along the Nankai subduction zone with a recurrence interval of
100-200 years. The most recent interplate earthquake was the Nankai earthquake (Mw=8.2), which occurred in 1946 off the Kii
Peninsula.
In order to figure out seismic structure and stratigraphy of the Nankai accretionary wedge off cape Muroto, southwest Japan,
we have conducted three-dimensional (3-D) multichannel seismic (MCS) reflection survey using R/V Ewing in 1999. We acquired
the MCS data on 81 separate lines with 100 m line spacing, each 80 km long, producing 8 X 80 km 3-D seismic volume. To obtain
the 3-D prestack depth migration images, we constructed and updated a 3-D interval velocity model using the CDP bin gathers
for which preconditioning processings including amplitude recovery, deconvolution, and multiple suppression were applied.
Miocene to Pliocene Shikoku Basin sediments underthrusts the overlying accretionary prism along a decollement as the PSP
subducts beneath the EP. The oceanic crust of the subducting PSP is traceable over the entire inlines. Several imbricate
thrust faults are observed in the overlying accretionary wedge. The decollement steps down on the top of subducting oceanic
crust around ~30 km landward from the deformation front. We recognize several sigmoid, landward dipping out-of-sequence
thrust (OOST) faults in the landward thick wedge package. Most of the OOSTs are apparently developed from the subducting
oceanic basement to the seafloor in the forearc region, cutting both underthrust sediments and the overriding accretionary
prism. In this paper, we will show and discuss recent results of the 3-D prestack depth imaging, visualization, and seismic
structural/stratigraphic interpretation.
DE: 8015 Local crustal structure
DE: 8123 Dynamics, seismotectonics
DE: 3025 Marine seismics (0935)
DE: 3040 Plate tectonics (8150, 8155, 8157, 8158)
DE: 3045 Seafloor morphology and bottom photography
SC: Seismology [S]
MN: 2004 AGU Fall Meeting