HR: 0830h
AN: OS51B-0859 [PDF]
TI: Long-term Measurement of Sediment Resuspension and Gas Hydrate Stability at a Gulf of Mexico Seep
Site
AU: * Vardaro, M F
EM: vardaro@gerg.tamu.edu
AF: Texas A\&M University
GERG, 727 Graham Rd., College Station, TX 77845 United States
AU: Bender, L C
EM: les@gerg.tamu.edu
AF: Texas A\&M University
GERG, 727 Graham Rd., College Station, TX 77845 United States
AU: MacDonald, I R
EM: imacdonald@falcon.tamucc.edu
AF: Texas A\&M University
Corpus Christi, 6300 Ocean Dr. PALS ST320, Corpus Christi, TX 78412 United States
AB:
To study the temporal topographic and hydrologic changes in Gulf of Mexico cold seeps, we deployed a deep-sea time-lapse
camera, several temperature probes and an ADCP mooring at the continental shelf seep community surrounding a gas hydrate
outcropping. The digital camera recorded one still image every six hours for three months in 2001, every two hours for the
month of June 2002 and every six hours for the month of July 2002. A pair of 300 kHz Workhorse acoustic Doppler current
profilers (ADCPs) attached to a 540 meter-long mooring were anchored approximately 2 km from the site in 2002. Temperature
probes were deployed at the site over the entire experimental period.
The data recovered provide a comprehensive record of gas hydrate mound processes. We calculated biological activity by
identifying fauna observed in the time-lapse record and recording the number of individuals and species seen in each image.
1,381 individual organisms representing over 20 species were observed. An average of 4.6 ($\pm$3.0) organisms were seen in
each frame during the three-month deployment, while 3.6 ($\pm$4.2) were seen per frame in the one-month deployment. An
extensive amount of sediment suspension and redistribution occurred during the deployment period. By digitally analyzing the
luminosity of the water column above the mound and plotting the results over time the turbidity at the site could be
quantified. A 24.1-hour diurnal pattern can be seen in the record, indicating a possible tidal or inertial component to
deep-sea currents in this area.
Contrary to expectations, there was no major change in shape or size of the gas hydrate outcrop being studied. This
indicates a higher degree of stability than laboratory studies or prior in situ observations have shown. The stable
topography of the gas hydrate mound combines with high organic output and sediment turnover to serve as a focus of benthic
predatory activity. The frequency and recurrence of sediment resuspension indicate that change in the depth and local
distribution of surface sediments is a robust feature of the benthos at this site. Because the sediment interface is a
critical environment for hydrocarbon oxidation and chemosynthesis, short term variations and heterogeneity may be important
attributes of these settings.
DE: 0400 Biogeosciences
DE: 1050 Marine geochemistry (4835, 4850)
DE: 4800 OCEANOGRAPHY: BIOLOGICAL AND CHEMICAL
DE: 4804 Benthic processes/benthos
SC: Ocean Sciences [OS]
MN: 2003 Fall Meeting