DOI: 10.1111/gcb.13637
论文题名: Long-term no-till and stover retention each decrease the global warming potential of irrigated continuous corn
作者: Jin V.L. ; Schmer M.R. ; Stewart C.E. ; Sindelar A.J. ; Varvel G.E. ; Wienhold B.J.
刊名: Global Change Biology
出版年: 2017
卷: 23, 期: 7 起始页码: 2848
结束页码: 2862
语种: 英语
英文关键词: conventional tillage
; global warming potential
; greenhouse gas intensity
; methane
; nitrous oxide
; no-till
; soil organic carbon
; stover removal
Scopus关键词: Zea mays
英文摘要: Over the last 50 years, the most increase in cultivated land area globally has been due to a doubling of irrigated land. Long-term agronomic management impacts on soil organic carbon (SOC) stocks, soil greenhouse gas (GHG) emissions, and global warming potential (GWP) in irrigated systems, however, remain relatively unknown. Here, residue and tillage management effects were quantified by measuring soil nitrous oxide (N2O) and methane (CH4) fluxes and SOC changes (ΔSOC) at a long-term, irrigated continuous corn (Zea mays L.) system in eastern Nebraska, United States. Management treatments began in 2002, and measured treatments included no or high stover removal (0 or 6.8 Mg DM ha−1 yr−1, respectively) under no-till (NT) or conventional disk tillage (CT) with full irrigation (n = 4). Soil N2O and CH4 fluxes were measured for five crop-years (2011–2015), and ΔSOC was determined on an equivalent mass basis to ~30 cm soil depth. Both area- and yield-scaled soil N2O emissions were greater with stover retention compared to removal and for CT compared to NT, with no interaction between stover and tillage practices. Methane comprised <1% of total emissions, with NT being CH4 neutral and CT a CH4 source. Surface SOC decreased with stover removal and with CT after 14 years of management. When ΔSOC, soil GHG emissions, and agronomic energy usage were used to calculate system GWP, all management systems were net GHG sources. Conservation practices (NT, stover retention) each decreased system GWP compared to conventional practices (CT, stover removal), but pairing conservation practices conferred no additional mitigation benefit. Although cropping system, management equipment/timing/history, soil type, location, weather, and the depth to which ΔSOC is measured affect the GWP outcomes of irrigated systems at large, this long-term irrigated study provides valuable empirical evidence of how management decisions can impact soil GHG emissions and surface SOC stocks. © 2017 John Wiley & Sons Ltd
资助项目: Jin, V.L.
; Agroecosystem Management Research, United States Department of Agriculture-Agricultural Research Service (USDA-ARS), University of Nebraska-Lincoln, 251 Filley Hall, United States
; 电子邮件: virginia.Jin@ars.usda.gov
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资源类型: 期刊论文
标识符: http://119.78.100.158/handle/2HF3EXSE/60906
Appears in Collections: 影响、适应和脆弱性
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作者单位: Agroecosystem Management Research, United States Department of Agriculture-Agricultural Research Service (USDA-ARS), University of Nebraska-Lincoln, 251 Filley Hall, Lincoln, NE, United States; Soil Management and Sugarbeet Research, USDA-ARS, Suite 320, 2150 Centre Avenue, Building D, Fort Collins, CO, United States; Monsanto Company, 10975 NW 121st Pl, Malcolm, NE, United States
Recommended Citation:
Jin V.L.,Schmer M.R.,Stewart C.E.,et al. Long-term no-till and stover retention each decrease the global warming potential of irrigated continuous corn[J]. Global Change Biology,2017-01-01,23(7)