HR: 1340h
AN: OS43A-0610 [Abstracts]
TI: Modeling Fluid Flow in a Low Flux Methane Hydrate Province: A Multifaceted Geophysical
Approach
AU: * Hornbach, M J
EM: matth@ig.utexas.edu
AF: The University of Texas, Institute for Geophysics, Austin, Tx 78759-8500
United States
AU: Ruppel, C
EM: cdr@eas.gatech.edu
AF: Georgia Tech, School of Earth and Atmospheric Sciences, Atlanta, Ga 30332
United States
AU: Saffer, D M
EM: dsaffer@geosc.psu.edu
AF: Pennsylvania State University, Department of Geoscience, University Park, Pa 16802
United States
AU: Van Dover, C L
EM: clvand@wm.edu
AF: The College of William and Mary, Department of Biology, Williamsburg, Va 23187
United States
AU: Holbrook, W S
EM: steveh@uwyo.edu
AF: The University of Wyoming, Department of Geology and Geophysics, Laramie, Wy 82071
United States
AB:
Although the Blake Ridge Diapir cold seep (ODP Site 996) has long been recognized as site where localized, anomalously high
fluid flux occurs, previous flux estimates based on geochemical data are too low to reconcile with the observation of
seafloor gas emission and the survival of a chemosynthetic community. In this study, we describe models of both the
background fluid flux (away from the diapir) and fluid flux along the vertical fluid conduit located directly above the salt
intrusion and constrain the results using high-resolution multichannel seismic (MCS) images, coincident heat flow data, and
pore water geochemistry. Analysis of modeling results shows that the background fluid flux at Blake Ridge Diapir in the
far-field is dominated by a conductive thermal regime and low fluid flux, similar to the outer Blake Ridge hydrate province,
and that dissolution of the salt diapir is not an important process controlling the thickness of the hydrate stability zone.
However, along the vertical fluid conduit directly beneath the seep, our model estimates significantly greater fluid flux
than previously suggested. Specifically, we infer fluid flux of 40 to 1700 m/ky in this chimney, at least 100 times larger
than published estimates and consistent with fluxes that sustain chemosynthetic communities in other gas hydrate provinces.
Though the chimney appears as a single sediment disruption event in the MCS data, new three-dimensional seismic images from
chirp data reveal with remarkable clarity the structural complexity of shallow gas chimney fluid-conduits . The shallow 3D
images demonstrate the limits of 2D fluid flow modeling by revealing how even in apparently simple systems, fluid flow may
occur in complex, three-dimensional plumbing systems.
DE: 3006 Marine electromagnetics
DE: 3015 Heat flow (benthic)
DE: 3017 Hydrothermal systems (0450, 1034, 3616, 4832, 8135, 8424)
DE: 3025 Marine seismics (0935, 7294)
DE: 3036 Ocean drilling
SC: Ocean Sciences [OS]
MN: Fall Meeting 2005