HR: 1330h
AN: T52C-0296 [PDF]
TI: Along strike variations in temperature, sediment diagenesis and dewatering in the Costa Rica subduction
zone
AU: * Spinelli, G
EM: spinelli@ees.nmt.edu
AF: Earth and Environmental Science Department, New Mexico Tech, 801 Leroy Place, Socorro, NM 87801 United States
AU: Saffer, D
EM: dsaffer@uwyo.edu
AF: Department of Geology and Geophysics, University of Wyoming, P.O. Box 3006, Laramie, WY 82071-3006 United States
AU: Underwood, M
EM: underwoodm@missouri.edu
AF: Department of Geological Sciences, University of Missouri, 101 Geology Building, Columbia, MO 87801 United States
AB:
For the subduction zone off the Nicoya Peninsula, Costa Rica, we have estimated the thermal structure, determined the nature
of the sediment entering the subduction zone, and estimated the location of diagenetic fluid sources. A previously
documented along-strike offset in the updip limit of seismicity appears to coincide with a transition between subduction of
relatively warm crust (seafloor heatflow of $\sim$100 mW/m$^2$) south of a triple-junction trace and cool crust (seafloor
heatflow of $\sim$20 mW/m$^2$) to the north. The lower heat flow north of the triple junction trace is generally attributed
to vigorous fluid circulation within the uppermost (1-2 km) ocean crust. The observed along strike variation in crustal heat
flow leads to different temperature histories for subducted sediments.
We calculated temperatures in the subducted sediments and the overlying margin wedge using a transient 1-D conductive model
that accounts for advection and conduction of heat during progressive burial of subducted sediments beneath the wedge as well
as frictional heating along the plate interface. Temperature profiles through the subduction zone were calculated for cases
with warm crust (no hydrothermal cooling of the crust) and cool crust (with varying depths of hydrothermal cooling in the
crust). The hemipelagic sediment on the incoming plate is approximately 10% opal and 60% smectite by weight, with no
significant variations along strike. We then use previously published kinetic expressions for opal and smectite dehydration
to estimate the reaction progress and distribution of fluid production within the subducting sediments.
Overlying the warm crust (in the south), most of the opal-to-quartz and smectite-to-illite reaction progress (and associated
release of fluid) occurs $\sim$25-45 km landward of the trench. Overlying the hydrothermally cooled crust, most of the
sediment dewatering reaction progress occurs $\sim$35-55 km landward of the trench. At the peak of the reactions, the
combined volume of fluid released from opal and smectite is comparable to the volume of fluid expelled from the sediment by
compaction at the same locations. Our results indicate that the spatial distribution of fluid released from kinetically
controlled sediment dewatering reactions (i.e. opal $\rightarrow$ quartz, and smectite $\rightarrow$ illite) mimics the
pattern of the updip limit of seismicity, which occurs $\sim$10-20 km landward of the modeled release of most of the fluid
from the smectite-to-illite transition. The release of fluid from diagenetic reactions probably causes fluid overpressures
and affects the pattern of fluid flow along the plate interface. The location of the updip limit of seismicity may be
influenced by the dissipation of fluid overpressures landward of the smecitite-to-illite dehydration front.
DE: 1829 Groundwater hydrology
DE: 3015 Heat flow (benthic) and hydrothermal processes
DE: 3022 Marine sediments--processes and transport
DE: 3210 Modeling
SC: Tectonophysics [T]
MN: 2003 Fall Meeting