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ORIGINAL ARTICLES

Development and application of a solute transport model to describe field-scale nitrogen processes during autumn rains

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Pages 30-43 | Received 01 Jun 2014, Accepted 26 Sep 2014, Published online: 27 Mar 2015

References

  • Äijö H, Myllys M, Nurminen J, Turunen M, Warsta L, Paasonen-Kivekäs M, Korpelainen E, Salo H, Sikkilä M, Alakukku L, et al. 2014. PVO2-hanke. Salaojitustekniikat ja pellon vesitalouden optimointi – Loppuraportti 2014 [Field drainage methods and optimizing water management of agricultural fields (PVO2) – Final report In 2014]. Salaojituksen tutkimusyhdistys ry:n tiedote 31. Helsinki (Finland): Finnish Drainage Research Association; 105 p.
  • Allen RG, Pereira LS, Raes DR, Smith M. 1998. Crop evapotranspiration: guidelines for computing crop water requirements. FAO Irrigation and drainage paper No. 56. Rome (Italy): FAO; 300 p. ISBN: 92-5-104219-5.
  • Bechmann M, Blicher-Mathiesen G, Kyllmar K, Iital A, Lagzdiņš A, Salo T. In press 2014. Nitrogen application, balances and their effect on water quality in small catchments in the Nordic–Baltic countries. Agric Ecosyst Environ.
  • Bjorneberg DL, Kanwar RS, Melvin SW. 1996. Seasonal changes in flow and nitrate-N loss from subsurface drains. Trans ASAE. 39:961–976.
  • Bunnell FL, Tait DEN, Flanagan PW, Van Clever K. 1977. Microbial respiration and substrate weight loss—I: a general model of the influences of abiotic variables. Soil Biol Biochem. 9:33–40.
  • Dayyani S, Prasher SO, Madani A, Madramootoo CA. 2010. Development of DRAIN–WARMF model to simulate flow and nitrogen transport in a tile-drained agricultural watershed in Eastern Canada. Agr Water Manage. 98:55–68.
  • Delin S, Stenberg M. 2014. Effect of nitrogen fertilization on nitrate leaching in relation to grain yield response on loamy sand in Sweden. Eur J Agron. 52:291–296.
  • Ekholm P, Granlund K, Kauppila P, Mitikka S, Niemi J, Rankinen K, Räike A, Räsänen J. 2007. Influence of EU policy on agricultural nutrient losses and the state of receiving surface waters in Finland. Agr Food Sci. 16:282–300.
  • FAO. 2007. World reference base for soil resources 2006, first update 2007. World Soil Resources Reports No. 103. Rome: FAO.
  • Feyen J, Jacques D, Timmerman A, Vanderborght J. 1998. Modelling water and solute transport in heterogenous soils: a review of recent approaches. J Agric Engng Res. 70:231–256.
  • Frey SK, Rudolph DL, Conant Jr B. 2012. Bromide and chloride tracer movement in macroporous tile-drained agricultural soil during an annual climatic cycle. J Hydrol. 460:77–89.
  • Gerke HH, Van Genuchten MTh. 1993. A dual-porosity model for simulating the preferential movement of water and solutes in structured porous media. Water Resour Res. 29:305–319.
  • Gerke HH, Van Genuchten MTh. 1996. Macroscopic representation of structural geometry for simulating water and solute movement in dual-porosity media. Adv Water Resour. 19:343–351.
  • Granlund K, Bärlund I, Salo T, Esala M, Posch M. 2008. The effect of decreasing fertilization on agricultural nitrogen leaching: a model study. Agr Food Sci. 16:376–386.
  • Granlund K, Rekolainen S, Grönroos J, Nikander A, Laine Y. 2000. Estimation of the impact of fertilisation rate on nitrate leaching in Finland using a mathematical simulation model. Agric Ecosyst Environ. 80:1–13.
  • Haws NW, Rao PSC, Šimůnek J, Poyer IC. 2005. Single-porosity and dual-porosity modeling of water flow and solute transport in subsurface-drained fields using effective field-scale parameters. J Hydrol. 313:257–273.
  • Jansson P-E, Karlberg L, editors. 2001. Coupled heat and mass transfer model for soil-plant-atmosphere systems. Stockholm: Royal Institute of Technology, Department of Civil and Environmental Engineering. 327 p. Available from: www2.lwr.kth.se/Vara%20Datorprogram/CoupModel/coupmanual.pdf
  • Jarvis NJ. 2007. A review of non‐equilibrium water flow and solute transport in soil macropores: principles, controlling factors and consequences for water quality. Eur J Soil Sci. 58:523–546.
  • Jarvis N, Larsbo M. 2012. MACRO (v5.2): model use, calibration, and validation. T ASABE. 55:1413–1423.
  • Kløve B, Ala-Aho P, Bertrand G, Gurdak JJ, Kupfersberger H, Kværner J, Muotka T, Mykra H, Preda E, Rossi P, et al. 2013. Climate change impacts on groundwater and dependent ecosystems. J Hydrol. 518:250–266.
  • Knisel WG, Turtola E. 2000. GLEAMS model application on a heavy clay soil in Finland. Agr Water Manage. 43:285–309.
  • Köhne JM, Köhne S, Šimůnek J. 2009. A review of model applications for structured soils: b) Pesticide transport. J Contam Hydrol. 104:36–60.
  • Larsson MH, Jarvis NJ. 1999. A dual-porosity model to quantify macropore flow effects on nitrate leaching. J Environ Qual. 28:1298–1307.
  • Mohanty BP, Bowman RS, Hendrickx JMH, Šimůnek J, Van Genuchten MTh. 1998. Preferential transport of nitrate to a tile drain in an intermittent-flood-irrigated field: model development and experimental evaluation. Water Resour Res. 34:1061–1076.
  • Nash J, Sutcliffe JV. 1970. River flow forecasting through conceptual models part I—A discussion of principles. J Hydrol. 10:282–290.
  • Paasonen-Kivekäs M, Koivusalo H, Karvonen T, Vakkilainen P, Virtanen J. 1999. Nitrogen transport via surface and subsurface flow in an agricultural field. In: Heathwaite L, editor. Impact of land-use change on nutrient loads from diffuse sources. Birmingham: IAHS Publ. no. 257; p. 163–169.
  • Paasonen-Kivekäs M, Vakkilainen P, Karvonen T. 2008. Nutrient transport through tile drains on a clayey field. 10th International Drainage Workshop of ICID Working Group on Drainage, Helsinki–Tallinn, Finland– Estonia; 2008 July 6–11, Conference Proceedings; p. 142–152.
  • Pietola L, Tanni R, Elonen P. 1999. Responses of yield and N use of spring sown crops to N fertilization, with special reference to the use of plant growth regulators. Agr Food Sci. 8:423–440.
  • Rankinen K, Granlund K, Bärlund I. 2004. Modelling of seasonal effects of soil processes on N leaching in northern latitudes. Nord Hydrol. 35:347–357.
  • Rankinen K, Granlund K, Futter MN, Butterfield D, Wade AJ, Skeffington R, Arvola L, Veijalainen N, Huttunen I. Lepistö A. 2013. Controls on inorganic nitrogen leaching from Finnish catchments assessed using a sensitivity and uncertainty analysis of the INCA-N model. Boreal Environ Res. 18:373–386.
  • Rankinen K, Salo T, Granlund K. 2008. Simulated nitrogen leaching, nitrogen mass field balances and their correlation on four farms in south-western Finland during the period 2000–2005. Agr Food Sci. 16:387–406.
  • Rasa K, Horn R, Räty M, Yli-Halla M, Pietola L. 2009. Shrinkage properties of differently managed clay soils in Finland. Soil Use Manage. 25:175–182.
  • Rekolainen S. 1993. Assessment and Mitigation of Agricultural Water Pollution. Helsinki, Finland: Publications of the Water and Environment Research Institute, National Board of Waters and the Environment, p. 12.
  • Salazar O, Wesström I, Youssef MA, Skaggs RW, JoelA. 2009. Evaluation of the DRAINMOD–N II model for predicting nitrogen losses in a loamy sand under cultivation in south-east Sweden. Agr Water Manage. 96:267–281.
  • Salo T, Turtola E. 2006. Nitrogen balance as an indicator of nitrogen leaching in Finland. Agr Ecosyst Environ. 113:98–107.
  • Šimůnek J, Jarvis NJ, Van Genuchten MTh, Gärdenäs A. 2003. Review and comparison of models for describing non-equilibrium and preferential flow and transport in the vadose zone. J Hydrol. 272:14–35.
  • Šimůnek J, Van Genuchten MTh. 2008. Modeling non-equilibrium flow and transport using Hydrus. Vadose Zone J. 7:782–797.
  • Turtola E, Alakukku L, Uusitalo R, Kaseva A. 2007. Surface runoff, subsurface drainflow and soil erosion as affected by tillage in a clayey Finnish soil. Agr Food Sci. 16:332–351.
  • Turtola E, Paajanen A. 1995. Influence of improved subsurface drainage on phosphorus losses and nitrogen leaching from a heavy clay soil. Agr Water Manage. 28:295–310.
  • Turunen M, Warsta L, Paasonen-Kivekäs M, Nurminen J, Koivusalo H. 2014. Simulating water balance and evapotranspiration in a subsurface drained clayey agricultural field in high latitude conditions. Acta Agr Scand B-S P. Accepted manuscript.
  • Turunen M, Warsta L, Paasonen-Kivekäs M, Nurminen J, Myllys M, Alakukku L, Äijö H, Puustinen M, Koivusalo H. 2013. Modeling water balance and effects of different subsurface drainage methods on water outflow components in a clayey agricultural field in boreal conditions. Agr Water Manage. 121:135–148.
  • Vagstad N, Stålnacke P, Andersen HE, Deelstra J, Gustafson A, Ital A, Jansons V, Kyllmar K, Loigu E, Rekolainen S, et al. 2001. Nutrient losses from agriculture in the Nordic and Baltic countries. Measurements in small agricultural catchments and national agro-environmental statistics. Copenhagen: TemaNord, Nordic Council of Ministers.
  • Vagstad N, Stålnacke P, Andersen H-E, Deelstra J, Jansons V, Kyllmar K, Loigu E, Rekolainen S, Tumas R. 2004. Regional variations in diffuse nitrogen losses from agriculture in the Nordic and Baltic regions. Hydrol Earth Syst Sci. 8:651–662.
  • Vakkilainen P, Alakukku L, Koskiaho J, Myllys M, Nurminen J, Paasonen-Kivekäs M, Peltomaa R, Puustinen M, Äijö H. 2010. Pellon vesitalouden optimointi – Loppuraportti 2010 [Field drainage methods and optimizing water management of agricultural fields (PVO) – Final report In 2010]. Salaojituksen tutkimusyhdistys ry:n tiedote 30. Helsinki (Finland): Finnish Drainage Research Association; 114 p.
  • Vakkilainen P, Alakukku L, Myllys M, Nurminen J, Paasonen-Kivekäs M, Peltomaa R, Puustinen M, Äijö H. 2008. Pellon vesitalouden optimointi – Väliraportti 2008 [Field drainage methods and optimizing water management of agricultural fields (PVO) – Mid report In 2008]. Salaojituksen tutkimusyhdistys ry:n tiedote 29. Helsinki (Finland): Finnish Drainage Research Association; 100 p.
  • van Genuchten MTh. 1980. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Sci Soc Am J. 44:892–898.
  • Vogel T, Gerke H, Zhang R, van Genuchten M. 2000. Modeling flow and transport in a two-dimensional dual-permeability system with spatially variable hydraulic properties. J Hydrol. 238:78–89.
  • Warsta L. 2011. Modelling water flow and soil erosion in clayey, subsurface drained agricultural fields [dissertation]. Espoo, Finland: Aalto University, School of Engineering, Department of Civil and Environmental Engineering. 212 pp. Available from: http://lib.tkk.fi/Diss/2011/isbn9789526042893/isbn9789526042893.pdf
  • Warsta L, Karvonen T, Koivusalo H, Paasonen-Kivekäs M, Taskinen A. 2013. Simulation of water balance in a clayey, subsurface drained agricultural field with three-dimensional FLUSH model. J Hydrol. 476:395–409.
  • Warsta L, Taskinen A, Koivusalo H, Paasonen-Kivekäs M, Karvonen T. 2013. Modelling soil erosion in a clayey, subsurface-drained agricultural field with a three-dimensional FLUSH model. J Hydrol. 498:132–143.
  • Warsta L, Taskinen A, Paasonen-Kivekäs M, Karvonen T, Koivusalo H. 2014. Spatially distributed simulation of water balance and sediment transport in an agricultural field. Soil Till Res. 143:26–37.
  • Warsta L, Turunen M, Koivusalo H, Paasonen-Kivekäs M, Karvonen T, Taskinen A. 2012. Modelling heat transport and freezing and thawing processes in a clayey, subsurface drained agricultural field. Paper presented at: 11th ICID Int. Drainage Workshop on Agricultural Drainage, Needs and Future Priorities; 2012 September 23–27; Cairo, Egypt.
  • Yli-Halla M, Mokma DL, Alakukku L. 2009. Evidence for the formation of Luvisols/Alfisols as a response to coupled pedogenic and anthropogenic influences in a clay soil in Finland. Agr Food Sci Finland. 18:388–401.
  • Youssef MY, Skaggs RW, Chescheir GM, Gilliam JW. 2005. The Nitrogen Simulation Model, DRAINMOD-N II. Trans ASAE. 48:611–626.
  • Zheng C, Bennet GD. 2002. Applied contaminant transport modelling. 2nd ed. New York: Wiley; 621p.

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