Register      Login
Soil Research Soil Research Society
Soil, land care and environmental research
RESEARCH ARTICLE

Tillage, compaction and wetting effects on NO3, N2O and N2 losses

Stephen M. Thomas https://orcid.org/0000-0002-9202-483X A D , Patricia M. Fraser A , Wei Hu A , Timothy J. Clough B , Gina van der Klei A , Samuel Wilson A , Rebekah Tregurtha A and David Baird C
+ Author Affiliations
- Author Affiliations

A New Zealand Institute for Plant & Food Research Limited, Private Bag 4704 Christchurch, New Zealand.

B Lincoln University, Canterbury, New Zealand.

C VSN (NZ) Limited, 8 Mariposa Crescent, Aidanfield, Christchurch, New Zealand.

D Corresponding author. Email: steve.thomas@plantandfood.co.nz

Soil Research 57(6) 670-688 https://doi.org/10.1071/SR18261
Submitted: 31 August 2018  Accepted: 5 December 2018   Published: 7 February 2019

Abstract

Denitrification is sensitive to changes in soil physical properties that affect solute transport, air content and gas diffusion. Using lysimeters, containing intact soil from intensively tilled (IT) and no-tilled (NT) soil used to grow forage crops, we examined how simulated animal treading at different moisture contents (above and below field capacity; >FC and <FC respectively) affected losses of nitrous oxide (N2O), dinitrogen (N2) and nitrate (NO3). We applied 15N-labelled NO3 (250 kg N ha–1) to the soil surface after treading (applied at 220 kPa to 40% of the soil surface), or to untrodden soil. Drainage occurred following weekly application of water over the experiment (two pore volumes over 84 days). Treading at >FC greatly increased denitrification, especially from IT soil and produced the greatest amount of N2 (64 kg N ha–1), N2O (8.2 kg N ha–1), as well as the lowest N2O to N2O + N2 ratio (0.08) and NO3 leaching (136 kg N ha–1 below 30 cm). In both the uncompacted or compacted soils <FC, emissions of N2O were greater (1.5–2.7% of N applied) and the N2O to N2O + N2 ratios were closer to 0.2 compared to compaction at >FC. Treading at <FC had minimal or no effect on denitrification compared to untrodden soil. Fluxes of N2 and N2O were strongly influenced by the weekly irrigation–drainage cycle. The N2 production and reduction in NO3 leaching were best correlated with increases in microporosity and reduced saturated hydraulic conductivity following treading. Although recovery of 15N was high (84.3%), the remainder of the balance was likely lost as either N2 or, of greater concern, as N2O. Practically, animal trampling on wet soils, especially when recently cultivated, should be avoided.

Additional keywords: denitrification, hydraulic conductivity, soil porosity, soil structure.


References

Arah JRM, Smith KA, Crichton IJ, Li HS (1991) Nitrous oxide production and denitrification in Scottish arable soils. Journal of Soil Science 42, 351–367.
Nitrous oxide production and denitrification in Scottish arable soils.Crossref | GoogleScholarGoogle Scholar |

Bakken LR, Bergaust L, Liu BB, Frostegard A (2012) Regulation of denitrification at the cellular level: a clue to the understanding of N2O emissions from soils. Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences 367, 1226–1234.
Regulation of denitrification at the cellular level: a clue to the understanding of N2O emissions from soils.Crossref | GoogleScholarGoogle Scholar | 22451108PubMed |

Balaine N, Clough TJ, Beare MH, Thomas SM, Meenken ED, Ross JG (2013) Changes in relative gas diffusivity explain soil N2O flux dynamics. Soil Science Society of America Journal 77, 1496–1505.
Changes in relative gas diffusivity explain soil N2O flux dynamics.Crossref | GoogleScholarGoogle Scholar |

Balaine N, Clough T, Beare M, Thomas S, Meenken E (2016) Relative gas diffusivity controls on soil nitrous oxide and dinitrogen fluxes and their ratios. Soil Science Society of America Journal 80, 529–540.
Relative gas diffusivity controls on soil nitrous oxide and dinitrogen fluxes and their ratios.Crossref | GoogleScholarGoogle Scholar |

Ball BC, Robertson EAG (1994) Effects of uniaxial compaction on aeration and structure of plowed or direct drilled soils. Soil & Tillage Research 31, 135–148.
Effects of uniaxial compaction on aeration and structure of plowed or direct drilled soils.Crossref | GoogleScholarGoogle Scholar |

Ball BC, Parker JP, Scott A (1999a) Soil and residue management effects on cropping conditions and nitrous oxide fluxes under controlled traffic in Scotland 2. Nitrous oxide, soil N status and weather. Soil & Tillage Research 52, 191–201.
Soil and residue management effects on cropping conditions and nitrous oxide fluxes under controlled traffic in Scotland 2. Nitrous oxide, soil N status and weather.Crossref | GoogleScholarGoogle Scholar |

Ball BC, Scott A, Parker JP (1999b) Field N2O, CO2 and CH4 fluxes in relation to tillage, compaction and soil quality in Scotland. Soil & Tillage Research 53, 29–39.
Field N2O, CO2 and CH4 fluxes in relation to tillage, compaction and soil quality in Scotland.Crossref | GoogleScholarGoogle Scholar |

Ball BC, Crichton I, Horgan GW (2008) Dynamics of upward and downward N2O and CO2 fluxes in ploughed or no-tilled soils in relation to water-filled pore space, compaction and crop presence. Soil & Tillage Research 101, 20–30.
Dynamics of upward and downward N2O and CO2 fluxes in ploughed or no-tilled soils in relation to water-filled pore space, compaction and crop presence.Crossref | GoogleScholarGoogle Scholar |

Ball BC, Cameron KC, Di HJ, Moore S (2012) Effects of trampling of a wet dairy pasture soil on soil porosity and on mitigation of nitrous oxide emissions by a nitrification inhibitor, dicyandiamide. Soil Use and Management 28, 194–201.
Effects of trampling of a wet dairy pasture soil on soil porosity and on mitigation of nitrous oxide emissions by a nitrification inhibitor, dicyandiamide.Crossref | GoogleScholarGoogle Scholar |

Barken LR, Bosrresen T, Njoss A (1981) Effect of soil compaction by tractor traffic on soil structure, denitrification and yield of wheat (Triticum aestivum L.). Journal of Soil Science and Plant Nutrition 38, 541–552.

Barton L, McLay CDA, Schipper LA, Smith CT (1999) Annual denitrification rates in agricultural and forest soils: a review. Australian Journal of Soil Research 37, 1073–1093.
Annual denitrification rates in agricultural and forest soils: a review.Crossref | GoogleScholarGoogle Scholar |

Batey T (1988) ’Soil husbandry’ (Soil and Land Use Consultants Ltd: Aberdeen, Scotland).

Batey T (2009) Soil compaction and soil management – a review. Soil Use and Management 25, 335–345.
Soil compaction and soil management – a review.Crossref | GoogleScholarGoogle Scholar |

Batey T, Killham K (1986) Field evidence on nitrogen losses by denitrification. Soil Use and Management 2, 83–86.
Field evidence on nitrogen losses by denitrification.Crossref | GoogleScholarGoogle Scholar |

Beare MH, Gregorich EG, St-Georges P (2009) Compaction effects on CO2 and N2O production during drying and rewetting of soil. Soil Biology & Biochemistry 41, 611–621.
Compaction effects on CO2 and N2O production during drying and rewetting of soil.Crossref | GoogleScholarGoogle Scholar |

Bhandral R, Saggar S, Bolan NS, Hedley MJ (2007) Transformation of nitrogen and nitrous oxide emission from grassland soils as affected by compaction. Soil & Tillage Research 94, 482–492.
Transformation of nitrogen and nitrous oxide emission from grassland soils as affected by compaction.Crossref | GoogleScholarGoogle Scholar |

Brooks R, Corey T (1964) ‘Hydraulic properties of porous media. Hydrology Papers.’ (Colorado State University: Fort Collins, USA)

Buczko U, Bens O, Hangen E, Brunotte J, Huttl RF (2003) Infiltration and macroporosity of a silt loam soil under two contrasting tillage systems. Landbauforschung Völkenrode 53, 181–190.

Cabrera M, Kissel D (1989) Review and simplification of calculations in 15N tracer studies. Fertilizer Research 20, 11–15.
Review and simplification of calculations in 15N tracer studies.Crossref | GoogleScholarGoogle Scholar |

Cameron KC, Harrison DF, Smith NP, McLay CDA (1990) A method to prevent edge flow in undisturbed soil cores and lysimeters. Australian Journal of Soil Research 28, 879–886.
A method to prevent edge flow in undisturbed soil cores and lysimeters.Crossref | GoogleScholarGoogle Scholar |

Cameron KC, Smith NP, McLay CDA, Fraser PM, McPherson RJ, Harrison DF, Harbottle P (1992) Lysimeters without edge flow: an improved design and sampling procedure. Soil Science Society of America Journal 56, 1625–1628.
Lysimeters without edge flow: an improved design and sampling procedure.Crossref | GoogleScholarGoogle Scholar |

Castellano MJ, Schmidt JP, Kaye JP, Walker C, Graham CB, Lin H, Dell CJ (2010) Hydrological and biogeochemical controls on the timing and magnitude of nitrous oxide flux across an agricultural landscape. Global Change Biology 16, 2711–2720.
Hydrological and biogeochemical controls on the timing and magnitude of nitrous oxide flux across an agricultural landscape.Crossref | GoogleScholarGoogle Scholar |

Chapuis-Lardy L, Wrage N, Metay A, Chotte J-L, Bernoux M (2007) Soils, a sink for N2O? A review. Global Change Biology 13, 1–17.
Soils, a sink for N2O? A review.Crossref | GoogleScholarGoogle Scholar |

Clough TJ, Sherlock RR, Cameron KC, Stevens RJ, Laughlin RJ, Muller C (2001) Resolution of the N-15 balance enigma? Australian Journal of Soil Research 39, 1419–1431.
Resolution of the N-15 balance enigma?Crossref | GoogleScholarGoogle Scholar |

Clough TJ, Rolston DE, Stevens RJ, Laughlin RJ (2003) N2O and N2 gas fluxes, soil gas pressures, and ebullition events following irrigation of (NO3–)-N-15-labelled subsoils. Australian Journal of Soil Research 41, 401–420.
N2O and N2 gas fluxes, soil gas pressures, and ebullition events following irrigation of (NO3)-N-15-labelled subsoils.Crossref | GoogleScholarGoogle Scholar |

Clough TJ, Kelliher FM, Wang YP, Sherlock RR (2006) Diffusion of N-15-labelled N2O into soil columns: a promising method to examine the fate of N2O in subsoils. Soil Biology & Biochemistry 38, 1462–1468.
Diffusion of N-15-labelled N2O into soil columns: a promising method to examine the fate of N2O in subsoils.Crossref | GoogleScholarGoogle Scholar |

Conen F, Dobbie KE, Smith KA (2000) Predicting N2O emissions from agricultural land through related soil parameters. Global Change Biology 6, 417–426.
Predicting N2O emissions from agricultural land through related soil parameters.Crossref | GoogleScholarGoogle Scholar |

Cook FJ, Knight JH, Kelliher FM (2013) Modelling oxygen transport in soil with plant root and microbial oxygen consumption: depth of oxygen penetration. Soil Research 51, 539–553.
Modelling oxygen transport in soil with plant root and microbial oxygen consumption: depth of oxygen penetration.Crossref | GoogleScholarGoogle Scholar |

de Klein CAM, Barton L, Sherlock RR, Li Z, Littlejohn RP (2003) Estimating a nitrous oxide emission factor for animal urine from some New Zealand pastoral soils. Australian Journal of Soil Research 41, 381–399.
Estimating a nitrous oxide emission factor for animal urine from some New Zealand pastoral soils.Crossref | GoogleScholarGoogle Scholar |

Deepagoda TKKC, Moldrup P, Schjonning P, Kawamoto K, Komatsu T, de Jonge LW (2011) Generalized density-corrected model for gas diffusivity in variably saturated soils. Soil Science Society of America Journal 75, 1315–1329.
Generalized density-corrected model for gas diffusivity in variably saturated soils.Crossref | GoogleScholarGoogle Scholar |

Di HJ, Cameron KC (2002) Nitrate leaching in temperate agroecosystems: sources, factors and mitigating strategies. Nutrient Cycling in Agroecosystems 64, 237–256.
Nitrate leaching in temperate agroecosystems: sources, factors and mitigating strategies.Crossref | GoogleScholarGoogle Scholar |

Dobbie KE, Smith KA (2003) Nitrous oxide emission factors for agricultural soils in Great Britain: the impact of soil water-filled pore space and other controlling variables. Global Change Biology 9, 204–218.
Nitrous oxide emission factors for agricultural soils in Great Britain: the impact of soil water-filled pore space and other controlling variables.Crossref | GoogleScholarGoogle Scholar |

Drewry JJ, Paton RJ (2000) Effects of cattle treading and natural amelioration on soil physical properties and pasture under dairy farming in Southland, New Zealand. New Zealand Journal of Agricultural Research 43, 377–386.
Effects of cattle treading and natural amelioration on soil physical properties and pasture under dairy farming in Southland, New Zealand.Crossref | GoogleScholarGoogle Scholar |

Drewry JJ, Cameron KC, Buchan GD (2001) Effect of simulated dairy cow treading on soil physical properties and ryegrass pasture yield. New Zealand Journal of Agricultural Research 44, 181–190.
Effect of simulated dairy cow treading on soil physical properties and ryegrass pasture yield.Crossref | GoogleScholarGoogle Scholar |

Drewry JJ, Cameron KC, Buchan GD (2008) Pasture yield and soil physical property responses to soil compaction from treading and grazing - a review. Australian Journal of Soil Research 46, 237–256.
Pasture yield and soil physical property responses to soil compaction from treading and grazing - a review.Crossref | GoogleScholarGoogle Scholar |

Farquharson R, Baldock J (2008) Concepts in modelling N2O emissions from land use. Plant and Soil 309, 147–167.
Concepts in modelling N2O emissions from land use.Crossref | GoogleScholarGoogle Scholar |

Firestone MK, Davidson EA (1989) ‘Microbiological basis of NO and N2O production and consumption in soil.’ (Wiley: New York, NY)

Firestone MK, Tiedje JM (1979) Temporal change in nitrous-oxide and dinitrogen from denitrification following onset of anaerobiosis. Applied and Environmental Microbiology 38, 673–679.

Fraser PM, Cameron KC, Sherlock RR (1994) Lysimeter study of the fate of nitrogen in animal urine returns to irrigated pasture. European Journal of Soil Science 45, 439–447.
Lysimeter study of the fate of nitrogen in animal urine returns to irrigated pasture.Crossref | GoogleScholarGoogle Scholar |

Frede H, Beisecker R, Gäth S (1994) Long-term impacts of tillage on the soil ecosystem. Journal of Plant Nutrition and Soil Science 157, 197–203.

Gee GW, Newman BD, Green SR, Meissner R, Rupp H, Zhang ZF, Keller JM, Waugh WJ, van der Velde M, Salazar J (2009) Passive wick fluxmeters: design considerations and field applications. Water Resources Research 45, WR04420
Passive wick fluxmeters: design considerations and field applications.Crossref | GoogleScholarGoogle Scholar |

Gillam KM, Zebarth BJ, Burton DL (2008) Nitrous oxide emission 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 emission from denitrification and the partitioning of gaseous losses as affected by nitrate and carbon addition and soil aeration.Crossref | GoogleScholarGoogle Scholar |

Glinski J, Stepniewski W (1985) ‘Soil aeration and its role for plants.’ (CRC Press Inc.: Boca Raton, FL, USA)

Grewal KS, Buchan GD, Tonkin PJ (1990) Estimation of field capacity and wilting point of some New Zealand soils from their saturation percentages. New Zealand Journal of Crop and Horticultural Science 18, 241–246.
Estimation of field capacity and wilting point of some New Zealand soils from their saturation percentages.Crossref | GoogleScholarGoogle Scholar |

Groffman PM, Tiedje JM, Robertson GP, Christensen S (1987) Denitrification at different temporal and geographical scales: proximal and distal controls. In ‘Advances in nitrogen cycling in agriculture systems’. (Ed JR Wilson) pp. 174–192. (CAB International: Wallingford, UK)

Groffman PM, Altabet MA, Bohlke JK, Butterbach-Bahl K, David MB, Firestone MK, Giblin AE, Kana TM, Nielsen LP, Voytek MA (2006) Methods for measuring denitrification: Diverse approaches to a difficult problem. Ecological Applications 16, 2091–2122.
Methods for measuring denitrification: Diverse approaches to a difficult problem.Crossref | GoogleScholarGoogle Scholar | 17205891PubMed |

Harrison-Kirk T, Thomas SM, Clough TJ, Beare MH, van der Weerden TJ, Meenken ED (2015) Compaction influences N2O and N2 emissions from 15N-labelled synthetic urine in wet soils during successive saturation/drainage cycles. Soil Biology & Biochemistry 88, 178–188.
Compaction influences N2O and N2 emissions from 15N-labelled synthetic urine in wet soils during successive saturation/drainage cycles.Crossref | GoogleScholarGoogle Scholar |

Haynes RJ (1995) Soil aggregate breakdown and compaction in New Zealand soils: MAF Policy Technical Paper 95/5. Ministry of Agriculture, Wellington, New Zealand.

Heincke M, Kaupenjohann M (1999) Effects of soil solution on the dynamics of N2O emissions: a review. Nutrient Cycling in Agroecosystems 55, 133–157.
Effects of soil solution on the dynamics of N2O emissions: a review.Crossref | GoogleScholarGoogle Scholar |

Hill AM, Di HJ, Cameron K, Podolyan A (2015) The effect of animal trampling and DCD on ammonia oxidisers, nitrification, and nitrate leaching under simulated winter forage grazing conditions. Journal of Soils and Sediments 15, 972–981.
The effect of animal trampling and DCD on ammonia oxidisers, nitrification, and nitrate leaching under simulated winter forage grazing conditions.Crossref | GoogleScholarGoogle Scholar |

Hillel D (1998) ‘Environmental soil physics.’ (Academic Press: London)

Hu W, Tabley F, Beare MH, Tregurtha C, Gillespie RN, Qiu WW, Gosden P (2018) Short term dynamics of soil physical properties as affected by compaction and tillage in a silt loam soil. Vadose Zone Journal 17,
Short term dynamics of soil physical properties as affected by compaction and tillage in a silt loam soil.Crossref | GoogleScholarGoogle Scholar |

Hutchinson GL, Mosier AR (1981) Improved soil cover method for field measurement of nitrous oxide fluxes. Soil Science Society of America Journal 45, 311–316.
Improved soil cover method for field measurement of nitrous oxide fluxes.Crossref | GoogleScholarGoogle Scholar |

IPCC (2013) Summary for Policymakers. In ‘Climate Change 2013: The physical science basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change.’ (Eds TF Stocker D Qin, G-K Plattner, M Tignor, SK Allen, J Boschung, A Nauels, Y Xia, V Bex, PM Midgley) pp. 3–79. (Cambridge University Press: Cambridge, UK and New York, NY, USA)

Jarvis SC, Barraclough D, Williams J, Rook AJ (1991) Patterns of denitrification loss from grazed grassland: effects of N fertiliser inputs on different sites. Plant and Soil 131, 77–88.
Patterns of denitrification loss from grazed grassland: effects of N fertiliser inputs on different sites.Crossref | GoogleScholarGoogle Scholar |

Kargas G, Kerkides P, Sotirakoglou K, Poulovassilis A (2016) Temporal variability of surface soil hydraulic properties under various tillage systems. Soil & Tillage Research 158, 22–31.
Temporal variability of surface soil hydraulic properties under various tillage systems.Crossref | GoogleScholarGoogle Scholar |

Keller T, Dexter AR (2012) Plastic limits of agricultural soils as functions of soil texture and organic matter content. Soil Research 50, 7–17.
Plastic limits of agricultural soils as functions of soil texture and organic matter content.Crossref | GoogleScholarGoogle Scholar |

Klefoth RR, Clough TJ, Oenema O, Van Groenigen JW (2014) Soil bulk density and moisture content influence relative gas diffusivity and the reduction of nitrogen-15 nitrous oxide. Vadose Zone Journal 13,
Soil bulk density and moisture content influence relative gas diffusivity and the reduction of nitrogen-15 nitrous oxide.Crossref | GoogleScholarGoogle Scholar |

Klute A (1965) Laboratory measurement of hydraulic conductivity of saturated soil. In ‘Methods of soil analysis. Part 1. Physical and mineralogical properties, including statistics of measurement and sampling’. (Ed. CA Black) pp. 210–221. (ASA, SSSA, Madison, WI, USA)

Kuncoro PH, Koga K, Satta N, Muto Y (2014) A study on the effect of compaction on transport properties of soil gas and water I: relative gas diffusivity, air permeability, and saturated hydraulic conductivity. Soil & Tillage Research 143, 172–179.
A study on the effect of compaction on transport properties of soil gas and water I: relative gas diffusivity, air permeability, and saturated hydraulic conductivity.Crossref | GoogleScholarGoogle Scholar |

Ledgard SF, Thorn ER, Singleton PL, Thorrold BS, Edmeades DC (1996) Environmental impacts of dairy systems. In ‘Proceedings of the Ruakura Farmers Conference Vol. 48’, pp. 26–33. (Ministry of Agriculture and Fisheries, New Zealand)

Linn DM, Doran JW (1984) Effect of water-filled pore space on carbon dioxide and nitrous oxide production in tilled and non-tilled soils. Soil Science Society of America Journal 48, 1267–1272.
Effect of water-filled pore space on carbon dioxide and nitrous oxide production in tilled and non-tilled soils.Crossref | GoogleScholarGoogle Scholar |

Liu XJ, Mosier AR, Halvorson AD, Reule CA, Zhang FS (2007) Dinitrogen and N2O emissions in arable soils: effect of tillage, N source and soil moisture. Soil Biology & Biochemistry 39, 2362–2370.
Dinitrogen and N2O emissions in arable soils: effect of tillage, N source and soil moisture.Crossref | GoogleScholarGoogle Scholar |

Menneer JC, Ledgard SF, McLay C, Silvester WB (2005) Animal treading stimulates denitrification in soil under pasture. Soil Biology & Biochemistry 37, 1625–1629.
Animal treading stimulates denitrification in soil under pasture.Crossref | GoogleScholarGoogle Scholar |

Milne RM, Haynes RJ (2004) Comparative effects of annual and permanent dairy pastures on soil physical properties in the Tsitsikamma region of South Africa. Soil Use and Management 20, 81–88.
Comparative effects of annual and permanent dairy pastures on soil physical properties in the Tsitsikamma region of South Africa.Crossref | GoogleScholarGoogle Scholar |

Ministry for the Environment (2016) New Zealand’s Greenhouse Gas Inventory 1990–2014. Ministry for the Environment, Wellington, New Zealand.

Ministry for the Environment & Statistics (2015) New Zealand’s Environmental Reporting Series: Environment Aotearoa 2015. Ministry for the Environment and Statistics New Zealand: Wellington, New Zealand.

Monaghan R, Barraclough D (1993) Nitrous oxide and dinitrogen emissions from urine-affected soil under controlled conditions. Plant and Soil 151, 127–138.
Nitrous oxide and dinitrogen emissions from urine-affected soil under controlled conditions.Crossref | GoogleScholarGoogle Scholar |

Mulholland B, Fullen MA (1991) Cattle trampling and soil compaction on loamy sands. Soil Use and Management 7, 189–193.
Cattle trampling and soil compaction on loamy sands.Crossref | GoogleScholarGoogle Scholar |

Mulvaney RL, Boast CW (1986) Equations for determination of nitrogen-15 labeled dinitrogen and nitrous oxide by mass spectrometry. Soil Science Society of America Journal 50, 360–363.
Equations for determination of nitrogen-15 labeled dinitrogen and nitrous oxide by mass spectrometry.Crossref | GoogleScholarGoogle Scholar |

Rabot E, Henault C, Cousin I (2016) Effect of the soil water dynamics on nitrous oxide emissions. Geoderma 280, 38–46.
Effect of the soil water dynamics on nitrous oxide emissions.Crossref | GoogleScholarGoogle Scholar |

Ravishankara AR, Daniel JS, Portmann RW (2009) Nitrous oxide (N2O): the dominant ozone-depleting substance emitted in the 21st Century. Science 326, 123–125.
Nitrous oxide (N2O): the dominant ozone-depleting substance emitted in the 21st Century.Crossref | GoogleScholarGoogle Scholar | 19713491PubMed |

Reynolds WD, Drury CF, Tan CS, Fox CA, Yang XM (2009) Use of indicators and pore volume-function characteristics to quantify soil physical quality. Geoderma 152, 252–263.
Use of indicators and pore volume-function characteristics to quantify soil physical quality.Crossref | GoogleScholarGoogle Scholar |

Rolston DE, Moldrup P (2002) Gas diffusivity. In ‘Methods of soil analysis: Part 4 physical methods’. (Eds JH Dae, GC Topp) pp. 1113–1139. (SSSA: Madison, WI, USA).

Ruser R, Flessa H, Russow R, Schmidt G, Buegger F, Munch JC (2006) Emission of N2O, N2 and CO2 from soil fertilized with nitrate: effect of compaction, soil moisture and rewetting. Soil Biology & Biochemistry 38, 263–274.
Emission of N2O, N2 and CO2 from soil fertilized with nitrate: effect of compaction, soil moisture and rewetting.Crossref | GoogleScholarGoogle Scholar |

Ryden JC (1983) Denitrification loss from a grassland soil in the field receiving different rates of nitrogen as ammonium-nitrate. Journal of Soil Science 34, 355–365.
Denitrification loss from a grassland soil in the field receiving different rates of nitrogen as ammonium-nitrate.Crossref | GoogleScholarGoogle Scholar |

Scholefield D, Hall DM (1986) A recording penetrometer to measure the strength of soil in relation to the stresses exerted by a walking cow. Journal of Soil Science 37, 165–176.
A recording penetrometer to measure the strength of soil in relation to the stresses exerted by a walking cow.Crossref | GoogleScholarGoogle Scholar |

Scholefield D, Patto PM, Hall DM (1985) Laboratory research on the compressibility of four topsoils from grassland. Soil & Tillage Research 6, 1–16.
Laboratory research on the compressibility of four topsoils from grassland.Crossref | GoogleScholarGoogle Scholar |

Shipitalo MJ, Dick WA, Edwards WM (2000) Conservation tillage and macropore factors that affect water movement and the fate of chemicals. Soil & Tillage Research 53, 167–183.
Conservation tillage and macropore factors that affect water movement and the fate of chemicals.Crossref | GoogleScholarGoogle Scholar |

Šimek M, Brůček P, Hynšt J, Uhlířova E, Petersen SO (2006) Effects of excretal returns and soil compaction on nitrous oxide emissions from a cattle overwintering area. Agriculture, Ecosystems & Environment 112, 186–191.
Effects of excretal returns and soil compaction on nitrous oxide emissions from a cattle overwintering area.Crossref | GoogleScholarGoogle Scholar |

Singleton PL, Addison B (1999) Effects of cattle treading on physical properties of three soils used for dairy farming in the Waikato, North Island, New Zealand. Australian Journal of Soil Research 37, 891–902.
Effects of cattle treading on physical properties of three soils used for dairy farming in the Waikato, North Island, New Zealand.Crossref | GoogleScholarGoogle Scholar |

Smith MS, Tiedje JM (1979) Phases of denitrification following oxygen depletion in soil. Soil Biology & Biochemistry 11, 261–267.
Phases of denitrification following oxygen depletion in soil.Crossref | GoogleScholarGoogle Scholar |

Stalham MA, Allen EJ, Herry FX (2005) ‘Effects of soil compaction on potato growth and its removal by cultivation.’ (British Potato Council: Oxford, UK)

Stark JM, Hart SC (1996) Evaluation of a diffusion technique for preparing salt solution, Kjeldahl digests, and persulfate digests for nitrogen-15 analysis. Soil Science Society of America Journal 60, 1846–1855.
Evaluation of a diffusion technique for preparing salt solution, Kjeldahl digests, and persulfate digests for nitrogen-15 analysis.Crossref | GoogleScholarGoogle Scholar |

Stevens RJ, Laughlin RJ, Atkins GJ, Prosser SJ (1993) Automated-determination of nitrogen-15-labeled dinitrogen and nitrous-oxide by mass-spectrometry. Soil Science Society of America Journal 57, 981–988.
Automated-determination of nitrogen-15-labeled dinitrogen and nitrous-oxide by mass-spectrometry.Crossref | GoogleScholarGoogle Scholar |

Syakila A, Kroeze C (2011) The global nitrous oxide budget revisited. Greenhouse Gas Measurement & Management 1, 17–26.
The global nitrous oxide budget revisited.Crossref | GoogleScholarGoogle Scholar |

Tebrügge F, Düring R (1999) Reducing tillage intensity: a review of results from a long-term study in Germany. Soil & Tillage Research 53, 15–28.
Reducing tillage intensity: a review of results from a long-term study in Germany.Crossref | GoogleScholarGoogle Scholar |

Thomas GW, Haszler GR, Blevins RL (1996) The effects of organic matter and tillage on maximum compactability of soils using the proctor test. Soil Science Society of America Journal 161, 502–508.
The effects of organic matter and tillage on maximum compactability of soils using the proctor test.Crossref | GoogleScholarGoogle Scholar |

Thomas SM, Beare MH, Francis GS, Barlow HE, Hedderley DI (2008) Effects of tillage, simulated cattle grazing and soil moisture on N2O emissions from a winter forage crop. Plant and Soil 309, 131–145.
Effects of tillage, simulated cattle grazing and soil moisture on N2O emissions from a winter forage crop.Crossref | GoogleScholarGoogle Scholar |

Trolove S, Thomas T, Van der Klei G, Cichota R, Beare M, Meenken E (2019) Nitrate leaching losses during pasture renewal – effects of treading urine, forages and tillage. Science of the Total Environment 651, 1819–1829.
Nitrate leaching losses during pasture renewal – effects of treading urine, forages and tillage.Crossref | GoogleScholarGoogle Scholar | 30316098PubMed |

Uchida Y, Clough TJ, Kelliher FM, Sherlock RR (2008) Effects of aggregate size, soil compaction, and bovine urine on N2O emissions from a pasture soil. Soil Biology & Biochemistry 40, 924–931.
Effects of aggregate size, soil compaction, and bovine urine on N2O emissions from a pasture soil.Crossref | GoogleScholarGoogle Scholar |

van der Weerden TJ, Kelliher FM, de Klein CAM (2012) Influence of pore size distribution and soil water content on nitrous oxide emissions. Soil Research 50, 125–135.
Influence of pore size distribution and soil water content on nitrous oxide emissions.Crossref | GoogleScholarGoogle Scholar |

van Groenigen JW, Kuikman PJ, de Groot WJM, Velthof GL (2005a) Nitrous oxide emission from urine-treated soil as influenced by urine composition and soil physical conditions. Soil Biology & Biochemistry 37, 463–473.
Nitrous oxide emission from urine-treated soil as influenced by urine composition and soil physical conditions.Crossref | GoogleScholarGoogle Scholar |

van Groenigen JW, Velthof GL, van der Bolt FJE, Vos A, Kuikman PJ (2005b) Seasonal variation in N2O emissions from urine patches: effects of urine concentration, soil compaction and dung. Plant and Soil 273, 15–27.
Seasonal variation in N2O emissions from urine patches: effects of urine concentration, soil compaction and dung.Crossref | GoogleScholarGoogle Scholar |

Vogeler I, Cichota R, Snow VO, Thomas S, Lloyd-West C (2017) Effects of soil heterogeneity on the uncertainty in modelling the fate of urinary N deposited during winter forage grazing. Soil & Tillage Research 169, 81–91.
Effects of soil heterogeneity on the uncertainty in modelling the fate of urinary N deposited during winter forage grazing.Crossref | GoogleScholarGoogle Scholar |

Yamulki S, Jarvis SC (2002) Short-term effects of tillage and compaction on nitrous oxide, nitric oxide, nitrogen dioxide, methane and carbon dioxide fluxes from grassland. Biology and Fertility of Soils 36, 224–231.
Short-term effects of tillage and compaction on nitrous oxide, nitric oxide, nitrogen dioxide, methane and carbon dioxide fluxes from grassland.Crossref | GoogleScholarGoogle Scholar |