HR: 1340h
AN: GC13A-0929 [Abstracts]
TI: The Effect of CO2 Stabilization on Uptake Rates in Land and Ocean Sinks as a Function of Ocean Circulation, Vegetation Type, and CO2 Fertilization
AU: * Searles, Z A
EM: zizisearles@gmail.com
AF: San Francisco State Unversity, 1600 Holloway Avenue, San Francisco, CA 94132, United
States
AB:
In order to mitigate effects of climate change, governing entities need to limit carbon dioxide (CO2) in the
atmosphere to a concentration yet to be determined. To assist policymakers, this experiment tested selected
sensitivities of the land and ocean sinks to a proposed CO2 stabilization scenario of 600 parts per million by
2100. Sensitivities evaluated were the effect of CO2 fertilization on vegetation, the effect of long-lived forests vs.
short-lived steppes, and the effect of various ocean circulation rates. All simulations were done with Tethys, a
four-box earth-systems model consisting of a vegetation-soil reservoir, ocean, atmosphere, and emissions
source. Results are generated through a series of equations written in IDL code, parameterized to simulate key
processes in the climate-carbon cycle. Results generated in response to ocean and land sink behavior included
peak allowable emissions, CO2 uptake rates in a reservoir, and the maximum amount of allowable emissions to
maintain concentrations at 600 ppm. Tethys predicted that the rate of carbon uptake in the oceans will decrease
with an increase in circulation time, and that the vegetation sink will cease to exist soon after atmospheric CO2 is
stabilized. Simulations suggest that grasslands will absorb more CO2 than forests, a result that indicates a flaw
in the model. The carbon cycle sensitivities tested in this experiment determine how much humans can emit and
how quickly emissions need to be reduced to meet stabilization goals. Future sink behavior should be
incorporated into any plan that seeks to stabilize atmospheric CO2.
DE: 0428 Carbon cycling (4806)
DE: 0466 Modeling
DE: 1615 Biogeochemical cycles, processes, and modeling (0412, 0414, 0793, 4805, 4912)
DE: 1622 Earth system modeling (1225)
SC: Global Environmental Change [GC]
MN: 2007 Fall Meeting