Premium
Deficit irrigation impacts on greenhouse gas emissions under drip‐fertigated maize in the Great Plains of Colorado
Author(s) -
Flynn Nora E.,
Stewart Catherine E.,
Comas Louise H.,
Del Grosso Stephen J.,
Schnarr Cassandra,
Schipanski Meagan,
von Fischer Joseph C.,
Stuchiner Emily R.,
Fonte Steven J.
Publication year - 2022
Publication title -
journal of environmental quality
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.888
H-Index - 171
eISSN - 1537-2537
pISSN - 0047-2425
DOI - 10.1002/jeq2.20353
Subject(s) - fertigation , environmental science , drip irrigation , irrigation , greenhouse gas , agronomy , fertilizer , agriculture , greenhouse , crop , crop yield , yield (engineering) , geography , biology , physics , ecology , archaeology , thermodynamics
Precise water and fertilizer application can increase crop water productivity and reduce agricultural contributions to greenhouse gas (GHG) emissions. Regulated deficit irrigation (DI) and drip fertigation control the amount, location, and timing of water and nutrient application. Yet, few studies have measured GHG emissions under these practices, especially for maize ( Zea mays L.). The objective was to quantify N 2 O and CO 2 emission from DI and full irrigation (FI) within a drip‐fertigated maize system in northeastern Colorado. During two growing seasons of measurement, treatments consisted of mild, moderate, and extreme DI and FI. Deficit irrigation was managed based on growth stage so that full evapotranspiration (ET) was met during the yield‐sensitive reproductive stage, but less than full crop ET was applied during the late vegetative and maturation growth stages. In the first year, mild DI (90% ET) reduced N 2 O emissions by 50% compared with FI. In the second year, compared with FI, moderate DI (69–80% ET) reduced N 2 O emissions by 15%, and extreme DI (54–68% ET) reduced N 2 O emissions by 40%. Only extreme DI in the second year significantly reduced CO 2 emissions (by 30%) compared with FI. Mild DI reduced yield‐scaled emissions in the first year, but moderate and extreme DI had similar yield‐scaled emissions as FI in the second year. The surface drip fertigation resulted in total GHG emissions that were one‐tenth of literature‐based measurements from sprinkler‐irrigated maize systems. This study illustrates the potential of DI and drip fertigation to reduce N 2 O and CO 2 emissions in irrigated cropping systems.