Methane and nitrous oxide emissions from rice grown on organic soils in the temperate zone

被引:7
作者
Wust-Galley, Chloe [1 ]
Heller, Sandra [1 ,2 ]
Ammann, Christof [1 ]
Paul, Sonja [1 ]
Doetterl, Sebastian [2 ]
Leifeld, Jens [1 ]
机构
[1] Agroscope, Climate & Agr Grp, Reckenholzstr 191, CH-8046 Zurich, Switzerland
[2] Swiss Fed Inst Technol, Dept Environm Syst Sci, Univ Str 16, CH-8092 Zurich, Switzerland
关键词
Organic soils; Greenhouse gas mitigation; Chamber flux measurements; Rice cultivation; Agriculture; GREENHOUSE-GAS EMISSIONS; FLUXES; CARBON; FIELDS; CH4; CO2;
D O I
10.1016/j.agee.2023.108641
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Organic soils are important carbon stocks. The conventional (dry) cultivation of these soils turns them into strong sources of greenhouse gas (GHG) emissions. For situations where restoration of natural land cover is not possible, solutions to this problem include the wet cultivation of these soils, reducing CO2 and N2O emissions. One option, paddy rice cultivation, has begun in the Swiss Central Plateau, which hitherto did not provide a suitable climate for wet rice. Wet rice is however associated with high CH4 emissions. These need to be quantified for this region, as the increased CH4 fluxes might negate the expected reductions in CO2 and N2O. Here, we quantify CH4 and N2O emissions from wet rice on organic soil with chamber measurements, in an outdoor mesocosm experiment in the Swiss Central Plateau, located in the cool temperate moist zone. We apply two water treatments (a high water table (WT) treatment, - 6 cm with mid-season drainage, and two medium WT treatments, - 11 and - 17 cm without mid-season drainage) and additionally test the use of a mineral cover layer to reduce N2O emissions. Additionally, a deeply-drained grassland treatment is used as a reference treatment. Annual CH4 emissions from rice cultivation are 6.2 g CH4.m-2.a1 for the higher WT treatment, 6.4 g CH4.m-2.a1 for the medium WT treatment and 2.4 g CH4.m-2.a1 for the medium WT treatment with mineral cover. The corresponding N2O emissions are 203, 190 and 56 mg N2O-N.m-2.a1, respectively. These results show that adding a mineral cover layer reduces annual emissions from both GHGs substantially. In total, the maximum increase in CH4 and N2O emissions resulting from rice cultivation, compared to the drained grassland treatment, is 2.3 t CO2-eq.ha1.a1. Expected CO2 emissions savings (derived from a literature-based model) due to a higher WT are a factor of 5-9 greater than this. We thus conclude that the cultivation of these organic soils in this region with wet rice could reduce their induced warming compared to their cultivation with (deeply drained) grassland.
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页数:9
相关论文
共 40 条
[1]   Contributions of nitrification and denitrification to N2O emissions from soils at different water-filled pore space [J].
Bateman, EJ ;
Baggs, EM .
BIOLOGY AND FERTILITY OF SOILS, 2005, 41 (06) :379-388
[2]   Compaction effects on CO2 and N2O production during drying and rewetting of soil [J].
Beare, M. H. ;
Gregorich, E. G. ;
St-Georges, P. .
SOIL BIOLOGY & BIOCHEMISTRY, 2009, 41 (03) :611-621
[3]  
Bickel K., 2006, 2006 IPCC GUIDELINES, V4, P1
[4]  
Carlson KM, 2017, NAT CLIM CHANGE, V7, P63, DOI [10.1038/nclimate3158, 10.1038/NCLIMATE3158]
[5]  
Drosler M., 2014, 2013 Supplement to the 2006 IPCC Guidelines for National Greenhouse Gas Inventories: Wetlands, P1
[6]   Overriding water table control on managed peatland greenhouse gas emissions [J].
Evans, C. D. ;
Peacock, M. ;
Baird, A. J. ;
Artz, R. R. E. ;
Burden, A. ;
Callaghan, N. ;
Chapman, P. J. ;
Cooper, H. M. ;
Coyle, M. ;
Craig, E. ;
Cumming, A. ;
Dixon, S. ;
Gauci, V. ;
Grayson, R. P. ;
Helfter, C. ;
Heppell, C. M. ;
Holden, J. ;
Jones, D. L. ;
Kaduk, J. ;
Levy, P. ;
Matthews, R. ;
McNamara, N. P. ;
Misselbrook, T. ;
Oakley, S. ;
Page, S. E. ;
Rayment, M. ;
Ridley, L. M. ;
Stanley, K. M. ;
Williamson, J. L. ;
Worrall, F. ;
Morrison, R. .
NATURE, 2021, 593 (7860) :548-+
[7]   Responsible agriculture must adapt to the wetland character of mid-latitude peatlands [J].
Freeman, Benjamin W. J. ;
Evans, Chris D. ;
Musarika, Samuel ;
Morrison, Ross ;
Newman, Thomas R. ;
Page, Susan E. ;
Wiggs, Giles F. S. ;
Bell, Nicholle G. A. ;
Styles, David ;
Wen, Yuan ;
Chadwick, David R. ;
Jones, Davey L. .
GLOBAL CHANGE BIOLOGY, 2022, 28 (12) :3795-3811
[8]  
Frolking S, 2011, ENVIRON REV, V19, P371, DOI [10.1139/A11-014, 10.1139/a11-014]
[9]  
Fuss Roland, 2024, CRAN, DOI 10.32614/CRAN.package.gasfluxes
[10]   Concentration and carbon isotope profiles of CH4 in paddy rice canopy:: Isotopic evidence for changes in CH4 emission pathways upon drainage [J].
Han, GH ;
Yoshikoshi, H ;
Nagai, H ;
Yamada, T ;
Saito, M ;
Miyata, A ;
Harazono, Y .
CHEMICAL GEOLOGY, 2005, 218 (1-2) :25-40