HR: 0800h
AN: B41B-0198 [Abstracts]
TI: Simulating Global Atmospheric CO2 and Local Atmospheric COS for a Continental Mixed Forest
AU: * Conner Gausepohl, S L
EM: sheri@atmos.colostate.edu
AF: Colorado State University, Department of Atmospheric Science, Fort Collins, CO 80526
United States
AU: Denning, A
EM: denning@atmos.colostate.edu
AF: Colorado State University, Department of Atmospheric Science, Fort Collins, CO 80526
United States
AU: Kawa, S
EM: kawa@maia.gsfc.nasa.gov
AF: NASA Goddard Space Flight Center, Code 613.3, Greenbelt, MD 20771
United States
AU: Berry, J
EM: joeberry@GlobalEcology.stanford.edu
AF: Carnegie Institution of Washington, Department of Plant Biology, Stanford, CA 94305
United States
AU: Montzka, S A
EM: Stephen.A.Montzka@noaa.gov
AF: NOAA, Climate Monitoring and Diagnostics Laboratory, Boulder, CO 80305
United States
AU: Conway, T
EM: Thomas.J.Conway@noaa.gov
AF: NOAA, Climate Monitoring and Diagnostics Laboratory, Boulder, CO 80305
United States
AU: Andrews, A
EM: Arlyn.Andrews@noaa.gov
AF: NOAA, Climate Monitoring and Diagnostics Laboratory, Boulder, CO 80305
United States
AU: Baker, I
EM: baker@atmos.colostate.edu
AF: Colorado State University, Department of Atmospheric Science, Fort Collins, CO 80526
United States
AU: Kleist, J
EM: johnk@atmos.colostate.edu
AF: Colorado State University, Department of Atmospheric Science, Fort Collins, CO 80526
United States
AB:
Simulated hourly global atmospheric [CO2] for the year 2000 exhibits a systematic error in the seasonal cycle of simulated
[CO2] in the Northern Hemisphere mid-latitudes, characterized by early spring drawdown of [CO2] relative to the observations.
We have evaluated the simulation of carbonyl sulfide (COS) in SiB3, a land-surface model, at a continental mixed-forest site
to separately evaluate seasonal variations in simulated photosynthesis and ecosystem respiration. Preliminary results of our
simulation at WLEF in Wisconsin, US, show that the calculation of photosynthesis (rather than respiration) is the cause of
the systematic error in the simulated seasonal cycle of atmospheric CO2.
COS is consumed in plant tissues by a reaction catalyzed by carbonic anhydrase, and therefore behaves as a tracer of gross
photosynthesis over land surfaces. We computed COS flux in the land surface model by assuming complete oxidation of
intercellular COS, and compared the simulated flux to fluxes of [COS] estimated from the observed jump in [COS] between the
atmospheric mixed layer and the free troposphere. Simulated surface exchanges of COS systematically led those derived from
observations by several weeks in the spring, indicating that the simulated initiation of photosynthesis, rather than the
timing of ecosystem respiration, is the cause of the systematic error in the simulated seasonal cycle of the flux of CO2.
Employing COS has assisted in evaluating our systematic error of early drawdown of atmospheric CO2 by the biosphere in the
spring and early recovery of atmospheric CO2 in the autumn, generally quite a difficult task due to the similar dependencies
of photosynthesis and respiration on temperature and moisture. These results indicate that the ratio of COS uptake to CO2
uptake provides a sensitive indicator of the ratio of photosynthesis to respiration.
DE: 0315 Biosphere/atmosphere interactions (0426, 1610)
DE: 0414 Biogeochemical cycles, processes, and modeling (0412, 0793, 1615, 4805, 4912)
DE: 0428 Carbon cycling (4806)
DE: 0466 Modeling
DE: 3322 Land/atmosphere interactions (1218, 1631, 1843)
SC: Biogeosciences [B]
MN: Fall Meeting 2005