HR: 0800h
AN: T41E-1255 [Abstracts]
TI: The role of dewatering in the progressive deformation of a sandy accretionary wedge: Constraints from
direct imagings of fluid flow and void structure
AU: * Hirono, T
EM: hirono@jamstec.go.jp
AF: Japan Agency for Marine-Earth Science and Technology, Natsushima 2-15, Yokosuka, 237-0061
Japan
AB:
Geological investigation of the deformation structures and sedimentary setting of the Emi Group, a Miocene sand-rich
accretionary complex, central Japan, revealed a six stage-structural evolution during shallow level accretion in a subduction
zone. The early deformation (stage 1) is characterized by independent particulate flow in layer parallel faults, scaly
cleavages and web structures, and upward dewatering in dish-and-pillar structures and breccia injections, while later
deformation (stages 2-6) involve mappable scale folding, meso- to macro-scopic thrusts and web structures with cataclastic
flow. Based on microscopic analyses of these structures, the early faulting with independent particulate flow (stage 1
deformation) is associated with dilatancy and preferred orientation of void space, whereas the later faulting with
cataclastic flow (stage 2 deformation) occurs with compaction and crude preferred orientation. The former features imply more
permeable fluid migration pathways, supported by the permeability measurements and direct imaging of fluid flow by X-ray CT.
On the other hand, the later fault zone has lower permeability and porosity than intact rock, and plays as fluid sealing.
Thus, in the early stage (stages 1), fluid flow occurs as focused flow through dilatant fault zones with independent
particulate flow or fluid migration by upward dewatering forming dish-and-pillar structures and breccia injections, whereas
no evidence of fluid flow is recognized at the later stages (stages 2-6). Namely the fault zones focus fluid flow during
primary accretion in shallow levels, and the fluid flow is strongly controlled by the deformation mechanism. Furthermore, the
change of the deformation mechanism could be effected by progressive increment of the confining pressure, accompanied with
accretion and lithification in the accretionary prism. In the shallow, dilatant-faulting regime where the deformation
mechanism is independent particulate flow, focused flow dominates, whereas in the deep, cataclastic regime distributed flow
may play a main conduit rather than the focused flow.
DE: 8100 TECTONOPHYSICS
SC: Tectonophysics [T]
MN: 2004 AGU Fall Meeting