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RESEARCH ARTICLE

Manure distribution as a predictor of N2O emissions from soil

S. O. Petersen A B , K. R. Baral A and E. Arthur A
+ Author Affiliations
- Author Affiliations

A Aarhus University, Department of Agroecology, Tjele, Denmark.

B Email: soren.o.petersen@agro.au.dk

Animal Production Science 56(3) 549-556 https://doi.org/10.1071/AN15534
Submitted: 2 September 2015  Accepted: 5 December 2015   Published: 9 February 2016

Abstract

Predicting nitrous oxide (N2O) emissions from manure-amended soil remains a challenge. One reason may be that spatial heterogeneity in distribution of manure is not accounted for in models of N2O emission, but experimental results suggest that both manure and soil properties affect the distribution of manure constituents after field application in a systematic way. Key to predicting the fate of labile carbon (C) and nitrogen (N) in manure is to acknowledge that the liquid phase, and a corresponding fraction of labile C and N, is partly absorbed by the bulk soil in response to the water potential gradient, and partly retained by particulate manure organic matter. Therefore, boundary conditions for subsequent transformations of C and N may be better described as two separate compartments. In this study, N2O emissions were determined in a 42-day experiment that included two soils (7.5% and 17% clay) adjusted to three soil water potentials (–3, –5 and –10 kPa) and amended with surface-applied pig slurry, cattle slurry, digestate or water only, in total 24 treatments. Net emissions of N2O corresponded to between 0.18% and 0.64% of manure N. Experimental results were analysed with a conceptual model of short-term N2O emissions from manure-amended soil, which estimates redistribution of manure constituents and predicts emissions from three sources, i.e. nitrification in bulk soil, and nitrification and denitrification in manure hotspots. Adopting a recent modification, oxygen availability in manure hotspots was related to relative soil gas diffusivity. Model efficiencies were 42% and 12% for the two soil types when using parameters determined by multiple regression of experimental results. With the process-based model Manure-DNDC as reference, the importance of accounting for distribution of manure water and labile C and N is discussed.

Additional keywords: denitrification, digestate, nitrification, relative gas diffusivity, slurry.


References

Balaine N, Clough TJ, Beare MH, Thomas SM, Meenken ED, Ross JG (2013) Changes in relative gas diffusivity explain soil nitrous oxide flux dynamics. Soil Science Society of America Journal 77, 1496–1505.
Changes in relative gas diffusivity explain soil nitrous oxide flux dynamics.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3sXhsF2lurnM&md5=cb2a6a70aa7a41f42ed3c300d9f54b48CAS |

Bollmann A, Conrad R (1998) Influence of O2 availability on NO and N2O release by nitrification and denitrification in soils. Global Change Biology 4, 387–396.
Influence of O2 availability on NO and N2O release by nitrification and denitrification in soils.Crossref | GoogleScholarGoogle Scholar |

Bouwman L, Goldewijk KK, Van Der Hoek KW, Beusen AHW, Van Vuuren DP, Willems J, Rufino MC, Stehfest E (2013) Exploring global changes in nitrogen and phosphorus cycles in agriculture induced by livestock production over the 1900–2050 period. Proceedings of the National Academy of Sciences of the United States of America 110, 20 882–20 887.
Exploring global changes in nitrogen and phosphorus cycles in agriculture induced by livestock production over the 1900–2050 period.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC2cXnsFyrsg%3D%3D&md5=ba0ced7386e569cc5ac2e1bfcbc6fa0bCAS |

Chatskikh D, Olesen JE, Berntsen J, Regina K, Yamulki S (2005) Simulation of effects of soils, climate and management on N2O emission from grasslands. Biogeochemistry 76, 395–419.
Simulation of effects of soils, climate and management on N2O emission from grasslands.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2MXht1OqsbzO&md5=0ca1abd3a1b841de698b8bf692dacc75CAS |

Chirinda N, Carter MS, Albert KR, Ambus P, Olesen JE, Porter JR, Petersen SO (2010) Emissions of nitrous oxide from arable organic and conventional cropping systems on two soil types. Agriculture, Ecosystems & Environment 136, 199–208.
Emissions of nitrous oxide from arable organic and conventional cropping systems on two soil types.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXisFentb4%3D&md5=3a6531cba9bbc3c4c30c514b2f205b61CAS |

Del Grosso SJ, Parton WJ, Mosier AR, Ojima DS, Kulmala AE, Phongpan S (2000) General model for N2O and N2 gas emissions from soils due to denitrification. Global Biogeochemical Cycles 14, 1045–1060.
General model for N2O and N2 gas emissions from soils due to denitrification.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3MXktVGlsw%3D%3D&md5=31f7fd0c82e2a1e3b5767a2798584948CAS |

Frolking SE, Mosier AR, Ojima DS, Li C, Parton WJ, Potter CS, Priesack E, Stenger R, Haberbosch C, Dörsch P, Flessa H, Smith KA (1998) Comparison of N2O emissions from soils at three temperate agricultural sites: simulations of year-round measurements by four models. Nutrient Cycling in Agroecosystems 52, 77–105.
Comparison of N2O emissions from soils at three temperate agricultural sites: simulations of year-round measurements by four models.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK1cXnsVSmt7g%3D&md5=a06acb57a23d34bd5e7c22ce743294afCAS |

Gillam KM, Zebarth BJ, Burton DL (2008) Nitrous oxide emissions from denitrification and the partitioning of gaseous losses as affected by nitrate and carbon addition and soil aeration. Canadian Journal of Soil Science 88, 133–143.
Nitrous oxide emissions from denitrification and the partitioning of gaseous losses as affected by nitrate and carbon addition and soil aeration.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1cXmvV2lsL4%3D&md5=23bdd72ff6238cbbebea30da82fbc8adCAS |

Groffman PM, Butterbach-Bahl K, Fulweiler RW, Gold AJ, Morse JL, Stander EK, Tague C, Tonitto C, Vidon P (2009) Challenges to incorporating spatially and temporally explicit phenomena (hotspots and hot moments) in denitrification models. Biogeochemistry 93, 49–77.
Challenges to incorporating spatially and temporally explicit phenomena (hotspots and hot moments) in denitrification models.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1MXivVSjs70%3D&md5=54bb7bde907dd9506b4ccbe53bd77ef1CAS |

Li C, Frolking S, Frolking TA (1992) A model of nitrous oxide evolution from soil driven by rainfall events: 1. Model structure and sensitivity. Journal of Geophysical Research 97, 9757–9776.

Li C, Salas W, Zhang R, Krauter C, Rotz A, Mitloehner F (2012) Manure-DNDC: a biogeochemical process model for quantifying greenhouse gas and ammonia emissions from livestock manure systems. Nutrient Cycling in Agroecosystems 93, 163–200.
Manure-DNDC: a biogeochemical process model for quantifying greenhouse gas and ammonia emissions from livestock manure systems.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC38XpvVyqtLc%3D&md5=8409a5e05bd4b0e38d648cebd9c0841dCAS |

Markfoged R, Nielsen LP, Nyord T, Ottosen LDM, Revsbech NP (2011) Transient N2O accumulation and emission caused by O2 depletion in soil after liquid manure injection. European Journal of Soil Science 62, 541–550.
Transient N2O accumulation and emission caused by O2 depletion in soil after liquid manure injection.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3MXhtV2hs7%2FL&md5=d3774bec9cf8295ef48d9ed28545cdc8CAS |

Moldrup P, Olesen T, Yoshikawa S, Komatsu T, Rolston DE (2005) Predictive-descriptive models for gas and solute diffusion coefficients in variably saturated porous media coupled to pore-size distribution: I. Gas diffusivity in repacked soil. Soil Science 170, 843–853.
Predictive-descriptive models for gas and solute diffusion coefficients in variably saturated porous media coupled to pore-size distribution: I. Gas diffusivity in repacked soil.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD28XhsV2jug%3D%3D&md5=a4bd038d0071bb58d1467707174726acCAS |

Møller HB, Sommer SG, Ahring BK (2002) Separation efficiency and particle size distribution in relation to manure type and storage conditions. Bioresource Technology 85, 189–196.
Separation efficiency and particle size distribution in relation to manure type and storage conditions.Crossref | GoogleScholarGoogle Scholar | 12227544PubMed |

Olesen T, Moldrup P, Yamaguchi T, Rolston DE (2001) Constant slope impedance factor model for predicting the solute diffusion coefficient in unsaturated soil. Soil Science 166, 89–96.
Constant slope impedance factor model for predicting the solute diffusion coefficient in unsaturated soil.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3MXhsFSktbo%3D&md5=48630cccf5d470a16a20c5b59007920dCAS |

Parton WJ, Holland EA, Del Grosso SJ, Hartman MD, Martin RE, Mosier AR, Ojima DS, Schimel DS (2001) Generalized model for NOx and N2O emissions from soils. Journal of Geophysical Research 106, 17,403–17,419.
Generalized model for NOx and N2O emissions from soils.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3MXmslGqsrw%3D&md5=2318e14ab0a3cd90d899d6ba28ec7b83CAS |

Pedersen AR, Petersen SO, Schelde K (2010) A comprehensive approach to soil-atmosphere trace-gas flux estimation with static chambers. European Journal of Soil Science 61, 888–902.
A comprehensive approach to soil-atmosphere trace-gas flux estimation with static chambers.Crossref | GoogleScholarGoogle Scholar |

Peters K, Jensen LS (2011) Biochemical characteristics of solid fractions from animal slurry separation and their effects on C and N mineralisation in soil. Biology and Fertility of Soils 47, 447–455.
Biochemical characteristics of solid fractions from animal slurry separation and their effects on C and N mineralisation in soil.Crossref | GoogleScholarGoogle Scholar |

Petersen SO, Sommer SG (2011) Ammonia and nitrous oxide interactions: roles of manure organic matter management. Animal Feed Science and Technology 166–167, 503–513.
Ammonia and nitrous oxide interactions: roles of manure organic matter management.Crossref | GoogleScholarGoogle Scholar |

Petersen SO, Henriksen K, Blackburn TH (1991) Coupled nitrification-denitrification associated with liquid manure in a gel-stabilized model system. Biology and Fertility of Soils 12, 19–27.
Coupled nitrification-denitrification associated with liquid manure in a gel-stabilized model system.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK38Xot1Oitg%3D%3D&md5=6b1caffb049a8d5dc6929c4381653a91CAS |

Petersen SO, Nielsen AL, Haarder K, Henriksen K (1992) Factors controlling nitrification and denitrification: a laboratory study with gel-stabilized liquid cattle manure. Microbial Ecology 23, 239–255.
Factors controlling nitrification and denitrification: a laboratory study with gel-stabilized liquid cattle manure.Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DC%2BC2c7jt12gsg%3D%3D&md5=a0a449fca1346f15c9740ede5d5cf70bCAS | 24192934PubMed |

Petersen SO, Nielsen TH, Frostegård Å, Olesen T (1996) Oxygen uptake, carbon metabolism, and denitrification associated with manure hot-spots. Soil Biology & Biochemistry 28, 341–349.
Oxygen uptake, carbon metabolism, and denitrification associated with manure hot-spots.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK28XhsFaqt78%3D&md5=5060a254da40b693c4113d32468cd541CAS |

Petersen SO, Nissen HH, Lund I, Ambus P (2003) Redistribution of slurry components as influenced by injection method, soil, and slurry properties. Journal of Environmental Quality 32, 2399–2409.
Redistribution of slurry components as influenced by injection method, soil, and slurry properties.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD3sXpt1KnurY%3D&md5=8d89b3829667d972c3748d8d50e5892fCAS | 14674566PubMed |

Petersen SO, Hoffmann CC, Schäfer C-M, Blicher-Mathiesen G, Elsgaard L, Kristensen K, Larsen SE, Torp SB, Greve MH (2012) Annual emissions of CH4 and N2O, and ecosystem respiration, from eight organic soils in Western Denmark managed by agriculture. Biogeosciences 9, 403–422.
Annual emissions of CH4 and N2O, and ecosystem respiration, from eight organic soils in Western Denmark managed by agriculture.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC38Xms1yqt7g%3D&md5=ad2e24ff9c2afb4ffbfa2b8e14956e27CAS |

R Core Team (2014) ‘R: a language and environment for statistical computing.’ (R Foundation for Statistical Computing: Vienna, Austria) Available at http://www.R-project.org/ [Verified 11 December 2015]

Renault P, Sierra J (1994) Modeling oxygen diffusion in aggregated soils: II. Anaerobiosis in topsoil layers. Soil Science Society of America Journal 58, 1023–1030.
Modeling oxygen diffusion in aggregated soils: II. Anaerobiosis in topsoil layers.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2cXlsFKntLk%3D&md5=5311b220acc44f3352cab8a032794f7dCAS |

Rochette P, Chadwick DR, de Klein CAM, Cameron K (2012) Deployment protocol. In ‘Nitrous oxide chamber methodology guidelines’. (Eds CAM de Klein, MJ Harvey) Ver. 1 (December 2012), pp. 34–55. (Ministry for Primary Industries: Wellington, New Zealand)

Senbayram M, Chen R, Mühling KH, Dittert K (2009) Contribution of nitrification and denitrification to nitrous oxide emissions from soils after application of biogas waste and other fertilizers. Rapid Communications in Mass Spectrometry 23, 2489–2498.
Contribution of nitrification and denitrification to nitrous oxide emissions from soils after application of biogas waste and other fertilizers.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD1MXptFCmsro%3D&md5=07d6a0c619b4ccad63249277eea1a018CAS | 19603466PubMed |

Sommer SG, Petersen SO, Møller HB (2004) Algorithms for calculating methane and nitrous oxide emissions from manure management. Nutrient Cycling in Agroecosystems 69, 143–154.
Algorithms for calculating methane and nitrous oxide emissions from manure management.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2cXksVGmsrk%3D&md5=a8c6f8964a811d1f2fd12dacb8a1e03eCAS |

Stepniewski W (1981) Oxygen diffusion and strength as related to soil compaction. II. Oxygen diffusion coefficient. Polish Journal of Soil Science 14, 3–13.

Velthof GL, Kuikman PJ, Oenema O (2003) Nitrous oxide emissions from animal manures applied to soil under controlled conditions. Biology and Fertility of Soils 37, 221–230.

Zhu K, Bruun S, Larsen M, Glud RN, Jensen LS (2014) Spatial oxygen distribution and nitrous oxide emissions from soil after manure application: a novel approach using planar optodes. Journal of Environmental Quality 43, 1809–1812.
Spatial oxygen distribution and nitrous oxide emissions from soil after manure application: a novel approach using planar optodes.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC2cXhs12hsbnI&md5=9bab04662c159af099ad3aafc76c52ebCAS | 25603265PubMed |