HR: 15:30h
AN: V43F-08 [Abstracts]
TI: Liquid Carbon Dioxide Venting at the Champagne Hydrothermal Site, NW Eifuku Volcano, Mariana
Arc
AU: * Lupton, J
EM: john.e.lupton@noaa.gov
AF: NOAA Pacific Environmental Laboratory, Hatfield Marine Science Center, Newport, OR 97365
United States
AU: Lilley, M
AF: School of Oceanography, University of Washington, Seattle, WA 98195
United States
AU: Butterfield, D
AF: JISAO, University of Washington and NOAA PMEL, Seattle, WA 98195
United States
AU: Evans, L
AF: CIMRS, Oregon State University and NOAA PMEL, Corvallis, OR 97331
United States
AU: Embley, R
AF: NOAA Pacific Environmental Laboratory, Hatfield Marine Science Center, Newport, OR 97365
United States
AU: Olson, E
AF: School of Oceanography, University of Washington, Seattle, WA 98195
United States
AU: Proskurowski, G
AF: School of Oceanography, University of Washington, Seattle, WA 98195
United States
AU: Resing, J
AF: JISAO, University of Washington and NOAA PMEL, Seattle, WA 98195
United States
AU: Roe, K
AF: JISAO, University of Washington and NOAA PMEL, Seattle, WA 98195
United States
AU: Greene, R
AF: CIMRS, Oregon State University and NOAA PMEL, Corvallis, OR 97331
United States
AU: Lebon, G
AF: JISAO, University of Washington and NOAA PMEL, Seattle, WA 98195
United States
AB:
In March/April 2004, submersible dives with the remotely-operated vehicle ROPOS discovered an unusual CO$_{2}$-rich
hydrothermal system near the summit of NW Eifuku, a submarine volcano located at 21.49$\deg$N, 144.04$\deg$E in the northern
Mariana Arc. Although several sites of hydrothermal discharge were located on NW Eifuku, the most intense venting was found
at 1600-m depth at the Champagne site, slightly west of the volcano summit. The Champagne site was found to be discharging
two distinct fluids into the ocean: a) several small white chimneys were emitting milky 103$\deg$C gas-rich hydrothermal
fluid with at least millimolar levels of H$_{2}$S and b) cold ($<$ 4$\deg$C) droplets coated with a milky skin were rising
slowly from the sediment. These droplets were later determined to consist mainly of liquid CO$_{2}$, with H$_{2}$S as a
probable secondary component. The droplets were sticky, and did not tend to coalesce into larger droplets, even though they
adhered to the ROV like clumps of grapes. The film coating the droplets was assumed to be CO$_{2}$ hydrate (or clathrate)
which is known to form whenever liquid CO$_{2}$ contacts water under these P,T conditions.
Samples of the 103$\deg$C hydrothermal fluids were collected in special gas-tight titanium sampling bottles that were able to
withstand the high internal pressures created by the dissolved gases. The Champagne hydrothermal fluids contained a
surprising 2.3 moles/kg of CO$_{2}$, an order of magnitude higher than any CO$_{2}$ values previously reported for submarine
hydrothermal fluids. The overall gas composition was 87% CO$_{2}$, $<$ 0.1% CH$_{4}$, $<$ 2 ppm H$_{2}$, 0.012 mM/kg
$^{4}$He, with the remaining 13% (322 mM/kg) assumed to be sulfur gases (H$_{2}$S, SO$_{2}$, etc.). (Additional analyses
planned will confirm the speciation of this sulfur gas component). The helium had R/R$_{A}$ = 7.3, typical of subduction
zone systems (R = $^{3}$He/$^{4}$He and R$_{A}$ = R$_{air}$). Isotopic analysis of the CO$_{2}$ yielded $\delta$$^{13}$C =
-1.75 $\permil$, much heavier than the -6.0 $\permil$ typical for carbon in MOR vent fluids. The C/$^{3}$He ratio was ~2.2 x
10$^{10}$, an order of magnitude higher than the average value of 2 x 10$^{9}$ found in MOR vent fluids. The
$\delta$$^{13}$C and C/$^{3}$He values suggest a substantial contribution to the carbon from subducted carbonates rather than
mantle carbon.
The Champagne site is only the second locality where liquid CO$_{2}$ has been observed venting into the deep sea (the other
reported location is in the Okinawa Trough, see Sakai et al., 1990). Because of the presence of liquid CO$_{2}$ in proximity
to hydrothermal organisms, the Champagne site may prove to be a valuable natural laboratory for studying the effects of high
CO$_{2}$ concentrations on marine ecosystems.
DE: 8424 Hydrothermal systems (8135)
DE: 4806 Carbon cycling
DE: 4815 Ecosystems, structure and dynamics
DE: 4820 Gases
DE: 4832 Hydrothermal systems
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2004 AGU Fall Meeting