HR: 16:50h
AN: NS54A-03 [Abstracts]
TI: Geologic Framework of the 2005 Keathley Canyon Gas Hydrate Research Well, Northern Gulf of Mexico
AU: * Hutchinson, D R
EM: dhutchinson@usgs.gov
AF: U.S. Geological Survey, 384 Woods Hole Rd., Woods Hole, MA 02543, United States
AU: Hart, P E
AF: U.S. Geological Survey, 345 Middlefield Rd., Menlo Park, CA 94025, United States
AU: Collett, T S
AF: U.S. Geological Survey, Box 25046, Denver, CO 80225, United States
AU: Edwards, K M
AF: U.S. Geological Survey, 384 Woods Hole Rd., Woods Hole, MA 02543, United States
AU: Twichell, D C
AF: U.S. Geological Survey, 384 Woods Hole Rd., Woods Hole, MA 02543, United States
AU: Snyder, F
AF: WesternGeco-Schlumberger, 3600 Briarpark Drive, Houston, TX 77042, United States
AB:
The Keathley Canyon DOE/JIP drill sites are located along the southeastern edge of an intraslope minibasin, the
Casey Basin, in the northern Gulf of Mexico at 1,335 m water depth. A grid of 2D high-resolution multichannel
seismic lines around the drill sites, targeted for imaging depths down to at least 1,000 m subbottom, reveals
multiple disconformities that bound 7 mappable seismic stratigraphic units. A major disconformity in the middle
of the units stands out for its angular baselapping geometry. From the seismic and drilling data, three episodes
of sedimentary deposition and deformation are inferred. The oldest episode consists of fine-grained muds
deposited during a period of relative stability in the basin (units e, f, and g). A second episode (units c and d)
consists of large vertical displacements associated with infilling and ponding of sediment. This second interval
corresponds with intercalated fine and coarse-grained material in the drill hole, which sampled the thin edges of
much thicker units. The final episode (units a and b) occurred during much subdued vertical displacement.
Hemipelagic drape (unit a) characterizes the modern seafloor deposits. The basin is mostly filled. Its sill is part of
a subsiding graben that is only 10-20 m shallower than the deepest point in the basin, indicating that gravity-
driven transport would mostly bypass the basin. Contemporary faulting along the basin margins has selectively
reactivated an older group of faults. The intercalated sand and mud deposits of units c and d are tentatively
correlated with late Pleistocene deposition derived from the western shelf-edge delta/depocenter of the
Mississippi River, which was probably most active from 320 ka to 70 ka (Winker and Booth, 2000). Gas hydrate
occurs within near-vertical fractures in units e and f of the oldest episode. The presence of sand within the gas
hydrate stability zone is not sufficient to concentrate gas hydrate even though dispersed gas hydrate occurs
deeper in the fractured mud/clay-rich sections of units e and f.
Winker, C.D., and Booth, J., 2000, Sedimentary dynamics of the salt-dominated continental slope, Gulf of Mexico:
integration of observations from the seafloor, near-surface, and deep subsurface: GCSSEPM Foundation 20th
Ann. Res. Conf., Deep-water Reservoirs of the World, p. 1059-1086 (CD-ROM publication).
DE: 3004 Gas and hydrate systems
DE: 4219 Continental shelf and slope processes (3002)
SC: Near-Surface Geophysics [NS]
MN: 2007 Joint Assembly