HR: 1340h
AN: OS23B-1307 [Abstracts]
TI: A Potential Link between Fluid Expulsion and Slope Stability: Geochemical Anomalies Measured in the Gas
Blowouts along the U.S. Atlantic Margin Provide New Constraints on their Formation
AU: * Hill, J C
EM: jchill@ucsd.edu
AF: Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA 920393
AU: Driscoll, N W
EM: ndriscoll@ucsd.edu
AF: Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA 920393
AU: Weissel, J K
EM: jeffw@ldeo.columbia.edu
AF: Lamont-Dougherty Earth Observatory, Columbia University
61 Rte. 9W, Palisades, NY 10964
AU: Kastner, M
EM: mkastner@ucsd.edu
AF: Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA 920393
AU: Singh, H
EM: hsingh@whoi.edu
AF: Woods Hole Oceanographic Institution, Mail Stop 7, Woods Hole, MA 02543
AU: Cormier, M
EM: cormier@ldeo.columbia.edu
AF: Lamont-Dougherty Earth Observatory, Columbia University
61 Rte. 9W, Palisades, NY 10964
AU: Camilli, R
EM: rcamilli@whoi.edu
AF: Woods Hole Oceanographic Institution, Mail Stop 7, Woods Hole, MA 02543
AU: Eustice, R
EM: ryan@whoi.edu
AF: Woods Hole Oceanographic Institution, Mail Stop 7, Woods Hole, MA 02543
AU: Lipscomb, R
EM: rlips007@earthlink.net
AF: Duke University Marine Laboratory, 135 Duke Marine Laboratory Rd, Beaufort, NC 28516
AU: McPhee, N
EM: nmcphee@whoi.edu
AF: Woods Hole Oceanographic Institution, Mail Stop 7, Woods Hole, MA 02543
AU: Newman, K
EM: knewman@ldeo.columbia.edu
AF: Lamont-Dougherty Earth Observatory, Columbia University
61 Rte. 9W, Palisades, NY 10964
AU: Robertson, G
EM: garobertson@ucsd.edu
AF: Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA 920393
AU: Solomon, E
EM: esolomon@ucsd.edu
AF: Scripps Institution of Oceanography, University of California, San Diego, La Jolla, CA 920393
AU: Tomanka, K
EM: ktomanka@gladstone.uoregon.edu
AF: Seafloor Systems, Inc., 2038 NW Aloclek Dr., Suite 218, Hillsboro, OR 97124
AB:
Geochemical, bathymetric and AUV based surveys conducted aboard the R/V Cape Hatteras in July 2004 provided new constraints
on the formation of large-scale gas blowout features located along the U.S. Atlantic margin. These features, believed to be
formed by gas expulsion processes, are ~4km long, ~1km wide and up to 50m deep. The stratal geometry of these features and
their location on the shelf-edge has led us to hypothesize that they may indicate incipient slope failure. Interpretation
from our chirp seismic reflection data, collected in 2000, showed gas generally was trapped under a thin veneer (several tens
of meters) of deltaic sediments, but may be venting along the landward wall of the blowouts. New geochemical data indicate
significant methane anomalies above both the seaward and landward walls of the blowouts and reveals that these features are
actively venting fluids at the seafloor. Using a METSr sensor mounted on the WHOI Seabed AUV, we observed methane
concentrations ranging from 50-100nM in the water column directly above the inner and outer walls, whereas typical methane
concentrations in seawater are expected to be 2-4nM. Some of these methane hot spots were also associated with salinity
anomalies. Additionally, pore fluids squeezed from a series of piston cores in the blowout region show relatively high
alkalinity values (>4-15mM), with a near absence of hydrogen sulfide. These initial results are particularly intriguing
since high alkalinity concentrations are commonly associated with high sulfide concentrations. We speculate that there may
be a flux of CO2 into the sediments that may be responsible for the high alkalinity and low sulfide. In addition to our
geochemical studies, we collected a full suite of bottom photographs, gravity cores, and high resolution bathymetry.
Visualization of these data in three dimensions, along with methane concentration profiles, chirp reflection, and
sidescan-sonar data has enabled us to build a relatively comprehensive picture of the blowout features. There are strong
spatial correlations between trapped gas and the overlying shelf-edge delta deposit, as well as with relatively high methane
concentrations in the water column, and indications of inner wall venting in the chirp profiles. Nevertheless, a distinct
spatial correlation between the occurrence of biological communities and the fluid expulsion sites was not observed. The
active fluid expulsion we measured is consistent with our geophysical observations, and supports our hypothesis that there is
a link between upslope fluid migration, downslope creep, and potential slope failure.
DE: 8105 Continental margins and sedimentary basins
DE: 3000 MARINE GEOLOGY AND GEOPHYSICS
DE: 3022 Marine sediments--processes and transport
DE: 3045 Seafloor morphology and bottom photography
DE: 1050 Marine geochemistry (4835, 4850)
SC: Ocean Sciences [OS]
MN: 2004 AGU Fall Meeting