HR: 09:45h
AN: C31C-07 [Abstracts]
TI: Do Deep Convective Zones Exist in Low-Accumulation Firn?
AU: * Severinghaus, J P
EM: jseveringhaus@ucsd.edu
AF: Scripps Inst Oceanography, University of California, San Diego, La Jolla, CA 92093
United States
AU: Fahnestock, M
EM: mark.fahnestock@unh.edu
AF: Complex Systems Research Center, University of New Hampshire, Durham, NH 03824
United States
AU: Albert, M
EM: malbert@hanover-crrel.army.mil
AF: Cold Regions Research an d Engineering Laboratory, Dartmouth College, Hanover, NH 03755
United States
AU: Scambos, T
EM: teds@icehouse.colorado.edu
AF: National Snow and Ice Data Center, University of Colorado, Boulder, CO 80309
United States
AU: Shuman, C
EM: Christopher.A.Shuman@nasa.gov
AF: NASA Goddard Space Flight Center, University of Maryland, Greenbelt, MD 20771
United States
AB:
Trapped air in deep ice cores from the Antarctic plateau (Vostok, Dome Fuji) exhibits anomalously low gravitational
fractionation during glacial periods, as inferred from \delta$^{15}$N and \delta$^{40}$Ar. These isotopic signals reflect
the thickness of the stagnant air column in the firn, where molecular diffusion dominates over convection as a vertical
transport mechanism. These signals have been used in prior studies as paleoindicators of the firn thickness at the time of
bubble close-off. However, a near-surface layer of intense air convection may dominate molecular diffusion sufficiently that
isotopic fractionation is prevented. This "convective zone" could explain the discrepancy seen in Vostok/Dome Fuji between
expected firn thickness (from densification models) and inferred diffusive column thickness, if the convective zone were 30 m
thick during glacial periods. Importantly, accumulation rates were very low during these times (1-2 cm/yr). The existence
of deep convective zones has been debated, but not yet observed in firn air studies. Certain low-accumulation regions of the
Antarctic plateau today exhibit very large grain sizes at and near the surface, as inferred from satellite passive microwave
studies (Fahnestock et al., GRL). Permeability of the firn in these regions should be orders of magnitude higher than in
normal firn, suggesting the hypothesis that deep convective zones exist in these regions. In January 2004 we sampled firn
air for measurement of \delta$^{15}$N and \delta$^{40}$Ar profiles at one such site, where snow megadunes exist. Initial
results suggest a convective zone of approximately 20 m thickness.
DE: 9310 Antarctica
DE: 3344 Paleoclimatology
DE: 1827 Glaciology (1863)
DE: 1045 Low-temperature geochemistry
DE: 0325 Evolution of the atmosphere
SC: Cryosphere [C]
MN: 2004 AGU Fall Meeting