VELOCITY AND INFERRED POROSITY MODEL OF THE OREGON ACCRETIONARY PRISM FROM MULTICHANNEL SEISMIC-REFLECTION DATA - IMPLICATIONS ON SEDIMENT DEWATERING AND OVERPRESSURE

被引:56
作者
COCHRANE, GR
MOORE, JC
MACKAY, ME
MOORE, GF
机构
[1] UNIV CALIF SANTA CRUZ, DEPT EARTH SCI, SANTA CRUZ, CA 95064 USA
[2] UNIV HAWAII, SCH OCEANOG EARTH SCI & TECHNOL, HONOLULU, HI 96822 USA
关键词
D O I
10.1029/93JB03206
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A two-dimensional model of seismic velocity derived from multichannel seismic data collected off Oregon in 1989 shows that as sediments are carried from Cascadia Basin into the accretionary prism, there are measurable changes in velocity-depth profiles. In the seaward most area of the basin, where no thrust faults are observed, there is a landward (and downward) increase of velocity in die sedimentary section. We attribute the velocity increase in the basin to a reduction of porosity resulting from consolidation and cementation, accompanied by diffusive flow of pore water driven by lateral tectonic as well as gravitational stress. Near the base of the slope there is an area of incipient thrusting (the protothrust zone) where protothrusts sole out into a protodecollement. Synthetic seismogram modeling of the reverse-polarity reflection from the protodecollement shows a 100-m-thick layer with a slightly lower velocity relative to the sediments above it. Above the protodecollement, velocity continues to increase landward. We suggest that in this area the diffusive flow of pore water out of the sediment is augmented above the protodecollement by fault-focused flow. Below the protodecollement a reversal in velocity may be due to an increase in porosity resulting from overpressuring of pore fluid trapped by reduction of the permeability of the sediment above the protodecollement. Farther landward, where thrusting has formed a fault-bend fold, velocity values are lower in the accreted section of sediments relative to the velocity at a comparable subbottom depth in the protothrust zone. The decrease in velocity is a result of microfracturing of the highly consolidated sediments accompanying uplift and folding and reflects the increasing role of fracturing and faulting in the control of dewatering of the sediments.
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页码:7033 / 7043
页数:11
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