HR: 0800h
AN: GC51D-1069 [Abstracts]
TI: Temperature sensitivity and time dependence of the global ocean clathrate reservoir
AU: * Archer, D
EM: d-archer@uchicago.edu
AF: Department of Geophysics, University of Chicago, 5734 S. Ellis Ave, Chicago, IL 60637
United States
AU: Buffett, B
EM: buffett@geosci.uchicago.edu
AF: Department of Geophysics, University of Chicago, 5734 S. Ellis Ave, Chicago, IL 60637
United States
AB:
We assess the impact of anthropogenic warming on the 1-100kyr timescale stability of the methane clathrate reservoir in the
oceans. Our assessment is based on model-predicted pCO$_{2}$ and temperature responses to anthropogenic CO$_{2}$ release,
coupled to a mechanistic model for the steady-state inventory of clathrate. The model predicts that the steady-state
inventory under present-day conditions would contain ~5000 Gton C, and that the steady-state inventory is very sensitive to
temperature. Future anthropogenic warming may trigger the release of carbon from the clathrate reservoir, which oxidizes to
CO$_{2}$ and contributes to further warming of the deep sea. The strength of this amplifier depends on how quickly the
reservoir responds to temperature, because the anthropogenic temperature spike decays with time. The strength of the
amplifier also depends on the fraction of methane that escapes from sediments during the meltdown of clathrates. Both of
these parameters are still highly uncertain, but plausible values for both predict a global clathrate reservoir which would
be unconditionally unstable at the present time, melting down periodically every few million years. If the timescale for
meltdown is 10 kyr (conservatively consistent with the Paleocene / Eocene Thermal Maximum event 55 Mya, if that was truly a
clathrate carbon release event), then a 50% release fraction is marginally stable. Decomposition of clathrates has the
potential to double or triple the anthropogenic perturbation to atmospheric CO$_{2}$ 100 kyr from now. The model predicts
glacial / interglacial changes in the methane clathrate reservoir of order 10$^{2}$ Gton C, enough to impact the deglaciation
carbon and carbon isotopic budgets.
DE: 4805 Biogeochemical cycles (1615)
DE: 4802 Anoxic environments
SC: Global Climate Change [GC]
MN: 2004 AGU Fall Meeting