Greenhouse Gas Emissions Response to Fertilizer Application and Soil Moisture in Dry Agricultural Uplands of Central Kenya

被引:9
作者
Mosongo, Peter Semba [1 ,2 ]
Pelster, David E. [3 ,5 ]
Li, Xiaoxin [1 ]
Gaudel, Gokul [1 ,2 ]
Wang, Yuying [1 ]
Chen, Suying [1 ]
Li, Wenyan [1 ,2 ]
Mburu, David [4 ]
Hu, Chunsheng [1 ,2 ]
机构
[1] Chinese Acad Sci, Ctr Agr Resources Res, Inst Genet & Dev Biol, Hebei Key Lab Soil Ecol,Key Lab Agr Water Resourc, 286 Huaizhong Rd, Shijiazhuang 050021, Hebei, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Int Livestock Res Inst ILRI, Mazingira Ctr, Nairobi 3070900100, Kenya
[4] Jomo Kenyatta Univ Agr & Technol JKUAT, Coll Agr & Nat Resources, Nairobi 6200000200, Kenya
[5] Agr & Agri Food Canada, 2560 Blvd Hochelaga, Quebec City, PQ G1V 2J3, Canada
关键词
nitrogen fertilization; greenhouse gases; sub-Saharan Africa; small scale farmers; NITROUS-OXIDE PRODUCTION; CARBON-DIOXIDE; N2O EMISSIONS; PRODUCTION SYSTEMS; FLUXES; DENITRIFICATION; METHANE; CO2; NITRIFICATION; MANAGEMENT;
D O I
10.3390/atmos13030463
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In sub-Saharan Africa, agriculture can account for up to 66% of anthropogenic greenhouse gas (GHG) emissions. Unfortunately, due to the low number of studies in the region there is still much uncertainty on how management activities can affect these emissions. To help reduce this uncertainty, we measured GHG emissions from three maize (Zea mays) growing seasons in central Kenya. Treatments included: (1) a no N application control (C); (2) split (30% at planting and 70% 1 month after planting) mineral nitrogen (N) applications (Min-100 kg N ha(-1)); (3) split mineral N + irrigation (equivalent to 10 mm precipitation every three days-MI); (4) split mineral N + 40 kg N ha(-1) added as manure (MM-total N = 140 kg ha(-1)); and (5) split mineral + intercropping with faba beans (Phaseolus vulgaris-MB). Soil CO2 fluxes were lower in season 1 compared to seasons 2 and 3 with fluxes highest in Min (p = 0.02) in season 2 and lowest in C (p = 0.02) in season 3. There was uptake of CH4 in these soils that decreased from season 1 to 3 as the mean soil moisture content increased. Cumulative N2O fluxes ranged from 0.25 to 2.45 kg N2O-N ha(-1), with the highest fluxes from MI during season 3 (p = 0.01) and the lowest from C during season 1 (p = 0.03). The average fertilizer induced emission factor (0.36 +/- 0.03%) was roughly one-third the default value of 1%. Soil moisture was a critical factor controlling GHG emissions in these central Kenya highlands. Under low soil moisture, the soils were CH4 sinks and minimal N2O sources.
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页数:17
相关论文
共 59 条
[1]   The Dynamics of Climate Change Adaptation in Sub-Saharan Africa: A Review of Climate-Smart Agriculture among Small-Scale Farmers [J].
Abegunde, Victor O. ;
Sibanda, Melusi ;
Obi, Ajuruchukwu .
CLIMATE, 2019, 7 (11)
[2]   Selection of the most suitable sampling time for static chambers for the estimation of daily mean N2O flux from soils [J].
Alves, Bruno J. R. ;
Smith, Keith A. ;
Flores, Rilner A. ;
Cardoso, Abmael S. ;
Oliveira, William R. D. ;
Jantalia, Claudia P. ;
Urquiaga, Segundo ;
Boddey, Robert M. .
SOIL BIOLOGY & BIOCHEMISTRY, 2012, 46 :129-135
[3]  
[Anonymous], 2014, Climate Change 2014: Synthesis Report. Contribution of Working Groups I
[4]  
[Anonymous], 2014, ESS Working Paper No 2, V2, P4
[5]   Gas pooling: A sampling technique to overcome spatial heterogeneity of soil carbon dioxide and nitrous oxide fluxes [J].
Arias-Navarro, Cristina ;
Diaz-Pines, Eugenio ;
Kiese, Ralf ;
Rosenstock, Todd S. ;
Rufino, Mariana C. ;
Stern, David ;
Neufeldt, Henry ;
Verchot, Louis V. ;
Butterbach-Bahl, Klaus .
SOIL BIOLOGY & BIOCHEMISTRY, 2013, 67 :20-23
[6]  
Ariga J., 2011, Yes, Africa Can: Success Stories from a Dynamic Continent, P269, DOI DOI 10.1596/978-0-8213-8745-0
[7]   A short-term investigation of trace gas emissions following tillage and no-tillage of agroforestry residues in western Kenya [J].
Baggs, E. M. ;
Chebii, J. ;
Ndufa, J. K. .
SOIL & TILLAGE RESEARCH, 2006, 90 (1-2) :69-76
[8]   Changes in Relative Gas Diffusivity Explain Soil Nitrous Oxide Flux Dynamics [J].
Balaine, Nimlesh ;
Clough, Tim J. ;
Beare, Mike H. ;
Thomas, Steve M. ;
Meenken, Esther D. ;
Ross, James G. .
SOIL SCIENCE SOCIETY OF AMERICA JOURNAL, 2013, 77 (05) :1496-1505
[9]   Sampling frequency affects estimates of annual nitrous oxide fluxes [J].
Barton, L. ;
Wolf, B. ;
Rowlings, D. ;
Scheer, C. ;
Kiese, R. ;
Grace, P. ;
Stefanova, K. ;
Butterbach-Bahl, K. .
SCIENTIFIC REPORTS, 2015, 5
[10]  
Birch H. F., 1960, Plant and Soil, V12, P81, DOI 10.1007/BF01377763