HR: 09:30h
AN: B31B-07 INVITED [PDF]
TI: DAYCENT Model Assessment of Land Use Change and Management on C and N Fluxes in the USA Great
Plains
AU: Ojima, D S
EM: dennis@nrel.colostate.edu
AF: Natural Resource Ecology Laboratory, Colorado State University - 1499, Fort Collins, CO 80526-1499 United States
AU: * Parton, W J
EM: billp@nrel.colostate.edu
AF: Natural Resource Ecology Laboratory, Colorado State University - 1499, Fort Collins, CO 80526-1499 United States
AU: Del Grosso, S J
EM: delgro@nrel.colostate.edu
AF: Natural Resource Ecology Laboratory, Colorado State University - 1499, Fort Collins, CO 80526-1499 United States
AU: Mosier, A R
EM: amosier@lamar.colostate.edu
AF: Natural Resource Ecology Laboratory, Colorado State University - 1499, Fort Collins, CO 80526-1499 United States
AU: Mosier, A R
EM: amosier@lamar.colostate.edu
AF: USDA/ARS, 301 South Howes
Federal Building Rm 420, Fort Collins, CO 80522 United States
AB:
Land use changes have dramatically altered the biogeochemical cycling associated with greenhouse gas (GHG) fluxes. During the
past 100+ years approximately 60% of the Great Plains grasslands have been converted to crop production. This has resulted
in increased N$_{2}$O emissions, decreased CH$_{4}$ uptake, and depletion of soil organic matter (SOM). However,
appropriate use of land management can reduce GHG gas emissions from agricultural systems while maintaining or increasing
crop yields. In recent years improved management systems have been introduced which conserve and enhance SOM. The DAYCENT
ecosystem model was used to compare the effects of converting Great Plains grasslands to crop production and the effects of
different management on net GHG fluxes (GHG$_{net}$) and crop yields for agricultural systems in the Great Plains of the USA.
Improved management includes conversion from intensive tillage to no-till cultivation, and reduction of summer fallow
periods by replacing continuous winter wheat cropping with alternative rotations that are economically viable for different
climate regimes within the Great Plains. Changes in soil organic carbon, N$_{2}$O emissions, CH$_{4}$ uptake, CO$_{2}$
fluxes, and the CO${_2}$ costs of N fertilizer production were converted to a common unit of CO$_{2}$-C equivalents and
summed to obtain GHG$_{net}$. At the regional level, grassland systems are neutral or small GHG$_{net}$ sinks, dryland
agriculture is a source, irrigated agriculture is a minor sink, and improved management is a major sink.
DE: 1610 Atmosphere (0315, 0325)
DE: 1615 Biogeochemical processes (4805)
SC: Biogeosciences [B]
MN: 2003 Fall Meeting