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A model of nitrous oxide evolution from soil driven by rainfall events: 2. Model applications
Author(s) -
Li Changsheng,
Frolking Steve,
Frolking Tod A.
Publication year - 1992
Publication title -
journal of geophysical research: atmospheres
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.67
H-Index - 298
eISSN - 2156-2202
pISSN - 0148-0227
DOI - 10.1029/92jd00510
Subject(s) - nitrous oxide , environmental science , soil water , grassland , carbon dioxide , trace gas , greenhouse gas , atmosphere (unit) , atmospheric sciences , soil carbon , denitrification , cycling , nitrogen , hydrology (agriculture) , environmental chemistry , soil science , agronomy , forestry , ecology , geology , meteorology , chemistry , geography , oceanography , biology , geotechnical engineering , organic chemistry
Simulations of nitrous oxide (N 2 O) and carbon dioxide (CO 2 ) emissions from soils were carried out with a rain‐event model of nitrogen and carbon cycling processes in soils (Li et al., this issue). Model simulations were compared with five field studies: a 1‐month denitrification study of a fertilized grassland in England; a 2‐month study of N 2 O emissions from a native and fertilized grassland in Colorado; a 1‐year study of N 2 O emissions from agricultural fields on drained, organic soils in Florida; a 1‐year study of CO 2 emissions from a grassland in Germany; and a 1‐year study of CO 2 emissions from a cultivated agricultural site in Missouri. The trends and magnitude of simulated N 2 O (or N 2 O + N 2 ) and CO 2 emissions were consistent with the results obtained in field experiments. The successful simulation of nitrous oxide and carbon dioxide emissions from the wide range of soil types studied indicates that the model, DNDC, will be a useful tool for studying linkages among climate, land use, soil‐atmosphere interactions, and trace gas fluxes.

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