sidebar
"Runoff of Pesticides:
Achievements and Limitations of Modelling Agrochemical Dislocation from Non-Point Sources at Various Landscape Related Scales"
Marcus Schulz and Michael Matthies 

References

Abel, A., Michael, A., Zartl, A. and Werner, F. (2000), “Impact of erosion-transported overburden dump materials on water quality in Lake Cospuden evolved from a former open cast lignite mine south of Leipzig, Germany”, Environmental Geology, 39: 683–688, [External LinkDOI].
Ascough II, J. C., Baffaut, C., Nearing, M. A. and Liu, B. Y. (1997), “The WEPP watershed model: I. Hydrology and erosion”, Transactions of the ASAE, 40(4): 921–933.
Bach, M., Huber, A. and Frede, H.-G. (2001), “Modeling pesticide losses from diffuse sources in Germany”, Water Science & Technology, 44(7): 189–196.
Behrendt, H. and Opitz, D. (2000), “Retention of nutrients in river systems: dependence on specific runoff and hydraulic load”, Hydrobiologia, 410: 111–122, [External LinkDOI].
Beulke, S., Brown, C. D., Dubus, I. G., Galicia, H., Jarvis, N. J., Schäfer, D. and Trevisan, M. (2006), “User subjectivity in Monte Carlo modelling of pesticide exposure”, Environmental Toxicology and Chemistry, 25(8): 2227–2236, [External LinkDOI].
Boesten, J. J. T. I. and van der Linden, A. M. A. (2001), “Effect of long-term sorption kinetics on leaching as calculated with the PEARL model for FOCUS scenarios”, in Pesticide Behaviour in Soils and Water, Proceedings of a symposium organised by the British Crop Protection Council, held at the Hilton Brighton Metropole, 13 – 15 November 2001, pp. 27–32, Alton, UK (BCPC Publications).
Bøggild, C. E., Knudby, C. J., Knudsen, M. B. and Starzer, W. (1999), “Snowmelt and runoff modelling of an Arctic hydrological basin in west Greenland”, Hydrological Processes, 13: 1989–2002, [External LinkDOI].
Bonazountas, M. (1987), “Chemical Fate Modelling in Soil Systems: A State-of-the-Art Review”, in Barth, H. and L’Hermite, P. L., eds., Scientific Basis for Soil Protection in the European Community, Proceedings of a symposium organised by the EU Commission and the Senate of Berlin, held in Berlin, 6 – 8 October 1986, London; New York (Elsevier).
Borah, D. K. and Bera, M. (2004), “Watershed-scale hydrologic and nonpoint-source pollution models: Review of applications”, Transactions of the ASAE, 47(3): 789–803.
Borah, D. K., Bera, M. and Xia, R. (2004), “Storm event flow and sediment simulations in agricultural watersheds using DWSM”, Transactions of the ASAE, 47(5): 1539–1559.
Brouwer, W. W. M. (1994), “Use of simulation-models for registration purposes: Evaluation of pesticide leaching to groundwater in The Netherlands”, Journal of Environmental Science and Health (A), 29: 1117–1132, [External LinkDOI].
Capri, E. and Miao, Z. (2002), “Modelling pesticide fate in rice paddy”, Agronomie, 22(4): 363–371, [External LinkDOI].
Chatupote, W. and Panapitukkul, N. (2005), “Regional assessment of nutrient and pesticide leaching in the vegetable production area of Rattaphum catchment, Thailand”, Water, Air, & Soil Pollution: Focus, 5: 165–173, [External LinkDOI].
Chew, C. Y., Moore, L. W. and Smith, R. H. (1991), “Hydrological simulation of Tennessee’s North Reelfoot Creek watershed”, Research Journal of the Water Pollution Control Federation, 63(1): 10–16.
Crowe, A. S. and Mutch, J. P. (1992), “EXPRES: an expert system for assessing the fate of pesticides in the subsurface”, Environmental Monitoring and Assessment, 23: 19–43, [External LinkDOI].
DeRoo, A. P. J., Offermans, R. J. E. and Cremers, N. H. D. T. (1996), “LISEM: A single-event, physically based hydrological and soil erosion model for drainage basins. 2: Sensitivity analysis, validation and application”, Hydrological Processes, 10(8): 1119–1126, [External LinkDOI].
Donigian, A. S. and Carsel, R. F. (1987), “Modeling the impact of conservation tillage practices on pesticide concentrations in ground and surface waters”, Environmental Toxicology and Chemistry, 6: 241–250, [External Link0.CO;2]DOI].
Eckhardt, D. A. V. and Wagenet, R. J. (1996), “Estimation of the Potential for Atrazine Transport in a Silt Loam Soil”, in Meyer, M. T. and Thurman, E. M., eds., Herbicide metabolites in surface water and groundwater, 209th National Meeting of the American Chemical Society, Anaheim, California, April 2–6, 1995, ACS Symposium Series, 630, pp. 101–116, Washington, DC (American Chemical Society).
Franke, H.-J. and Teutsch, G. (1994), “Stochastic simulation of the regional pesticide transport including the unsaturated and the saturated zone”, Ecological Modelling, 75–76: 529–539, [External LinkDOI].
Frede, H.-G., Bach, M., Fohrer, N. and Breuer, L. (2002), “Interdisciplinary modeling of the significance of soil functions”, Journal of Plant Nutrition and Soil Science, 165: 460–467, [External LinkDOI].
Gärdenäs, A. I., Šimůnek, J., Jarvis, N. J. and van Genuchten, M. T. (2006), “Two-dimensional modelling of preferential water flow and pesticide transport from a tile-drained field”, Journal of Hydrology, 329(3–4): 647–660, [External LinkDOI].
Goodman, E. D., Jenkins, J. J. and Zabik, M. J. (1983), “A model for azinphosmethyl attenuation and movement in a Michigan orchard ecosystem: II. Parameterization of a field-based model”, Archives of Environmental Contamination and Toxicology, 12: 111–119, [External LinkDOI].
Gottesbüren, B., Aden, K., Bärlund, I., Brown, C. D., Dust, M., Görlitz, G., Jarvis, N. J., Rekolainen, S. and Schäfer, H. (2000), “Comparison of pesticide leaching models: results using the Weiherbach data set”, Agricultural Water Management, 44(1): 153–181, [External LinkDOI].
Grønsten, H. A. and Lundekvam, H. (2006), “Prediction of surface runoff and soil loss in southeastern Norway using the WEPP Hillslope model”, Soil & Tillage Research, 85(1–2): 186–199, [External LinkDOI].
Hall, D. G. M. (1994), “Simulation of Dichlorprop leaching in 3 texturally distinct soils using the pesticide leaching model”, Journal of Environmental Science and Health (A), 29: 1211–1230, [External LinkDOI].
Harlin, J. (1991), “Development of a process oriented calibration scheme for the HBV hydrological model”, Nordic Hydrology, 22(1): 15–36.
Hattermann, F. F., Wattenbach, M., Krysanova, V. and Wechsung, F. (2005), “Runoff simulations on the macroscale with the ecohydrological model SWIM in the Elbe catchment - validation and uncertainty analysis”, Hydrological Processes, 19: 693–714, [External LinkDOI].
Herbst, M., Fialkiewicz, W., Chen, T., Pütz, T., Thiéry, D., Mouvet, C., Vachaud, G. and Vereecken, H. (2005a), “Intercomparison of Flow and Transport Models Applied to Vertical Drainage in Cropped Lysimeters”, Vadose Zone Journal, 4(2): 240–254, [External LinkDOI].
Herbst, M., Hardelauf, H., Harms, R., Vanderborght, J. and Vereecken, H. (2005b), “Pesticide fate at regional scale: Development of an integrated model approach and application”, Physics and Chemistry of the Earth, 30(8–10): 542–549, [External LinkDOI].
Hernandez, M., Miller, S. N., Goodrich, D. C., Goff, B. F., Kepner, W. G., Edmonds, C. M. and Jones, K. B. (2000), “Modeling runoff response to land cover and rainfall spatial variability in semi-arid watersheds”, Environmental Monitoring and Assessment, 64: 285–298, [External LinkDOI].
Huber, A., Bach, M. and Frede, H.-G. (1998), “Modeling pesticide losses with surface runoff in Germany”, Science of the Total Environment, 223(2–3): 177–191, [External LinkDOI].
Hutson, J. L. and Wagenet, R. J. (1993), “A Pragmatic field-scale approach for modelling pesticides”, Journal of Environmental Quality, 22(3): 494–499.
Ireson, A., Makropoulos, C. and Maksimovic, C. (2006), “Water Resources Modelling under Data Scarcity: Coupling MIKE BASIN and ASM Groundwater Model”, Water Resources Management, 20: 567–590, [External LinkDOI].
Jackson, S., Hendley, P., Jones, R., Poletika, N. and Russell, M. (2005), “Comparison of Regulatory Method Estimated Drinking Water Exposure Concentrations with Monitoring Results from Surface Drinking Water Supplies”, Journal of Agricultural and Food Chemistry, 53: 8840–8847, [External LinkDOI].
Jarvis, N. J., Stähli, M., Bergström, L. and Johnsson, H. (1994), “Simulation of Dichlorprop and Bentazon leaching in soils of contrasting texture using the MACRO model”, Journal of Environmental Science and Health (A), 29(6): 1255–1277, [External LinkDOI].
Jetten, V., Govers, G. and Hessel, R. (2003), “Erosion models: quality of spatial predictions”, Hydrological Processes, 17: 887–900, [External LinkDOI].
Julien, P. Y., Saghafian, B. and Ogden, F. L. (1995), “Raster-based hydrologic modelling of spatially-varied surface runoff”, Water Resources Bulletin, 31(3): 523–536.
Kalin, L. and Hantush, M. H. (2006), “Comparative assessment of two distributed watershed models with application to a small watershed”, Hydrological Processes, 20: 2285–2307, [External LinkDOI].
Kapo, K. E. and Burton Jr, G. A. (2006), “A geographic information system-based, weights-of-evidence approach for diagnosing aquatic ecosystem impairment”, Environmental Toxicology and Chemistry, 25: 2237–2249, [External LinkDOI].
Kienzle, S. W. and Schulze, R. E. (1992), “A simulation-model to assess the effect of afforestation on groundwater resources in deep sandy soils”, Water SA, 18(4): 265–272.
Klein, M. (1994), “Evaluation and comparison of pesticide leaching models for registration purposes: Results of simulations performed with the pesticide leaching model”, Journal of Environmental Science and Health (A), 29(6): 1197–1209, [External LinkDOI].
Klöcking, B. and Haberlandt, U. (2002), “Impact of land use changes on water dynamics – a case study in temperate meso and macroscale river basins”, Physics and Chemistry of the Earth, 27: 619–629, [External LinkDOI].
Krause, P. (2002), “Quantifying the impact of land use changes on the water balance of large catchments using the J2000 model”, Physics and Chemistry of the Earth, 27(9–10): 663–673, [External LinkDOI].
Krysanova, V., Müller-Wohlfeil, D.-I. and Becker, A. (1998), “Development and test of a spatially distributed hydrological/water quality model for mesoscale watersheds”, Ecological Modelling, 106(2–3): 261–289, [External LinkDOI].
Lorber, M. N. and Offutt, C. K. (1986), “A method for the assessment of groundwater contamination potential using a Pesticide Root Zone Model (PRZM) for the unsaturated zone”, in Gardner, W. Y., Honeycutt, R. C. and Nigg, H. N., eds., Evaluation of Pesticides in Groundwater, ACS Symposium Series, 315, pp. 342–365, Washington, DC (American Chemical Society).
Ma, Q. L., Smith, A. E., Hook, J. E. and Bridges, D. C. (1999), “Surface transport of 2,4-D from small turf plots: observations compared with GLEAMS and PRZM-2 model simulations”, Pesticide Science, 55(4): 423–433.
Mati, B. M., Morgan, R. P. C. and Quinton, J. N. (2006), “Soil erosion modelling with EUROSEM at Embori and Mukogodo catchments, Kenya”, Earth Surface Processes and Landforms, 31: 579–588, [External LinkDOI].
Matthies, M. and Behrendt, H. (1991), “Pesticide transport modelling in soil for risk assessment of groundwater contamination”, Toxicological & Environmental Chemistry, 31–32: 357–365, [External LinkDOI].
Miao, Z., Cheplick, M. J., Williams, M. W., Trevisan, M., Padovani, L., Gennari, M., Ferrero, A., Vidotto, F. and Capri, E. (2003), “Simulating Pesticide Leaching and Runoff in Rice Paddies with the RICEWQ–VADOFT Model”, Journal of Environmental Quality, 32: 2189–2199.
Michaud, J. and Sorooshian, S. (1994), “Comparison of simple versus complex distributed runoff models on a midsized semiarid watershed”, Water Resources Research, 30(3): 593–605, [External LinkDOI].
Morgan, R. P. C., Quinton, J. N. and Rickson, R. J. (1994), “Modeling methodology for soil-erosion assessment and soil conservation design - the EUROSEM approach”, Outlook on Agriculture, 23(1): 5–9.
Morgan, R. P. C., Quinton, J. N., Smith, R. E., Govers, G., Poesen, J. W. A., Auerswald, K., Chisci, G., Torri, D. and Styczen, M. E. (1998), “The European Soil Erosion Model (EUROSEM): a dynamic approach for predicting sediment transport from fields and small catchments”, Earth Surface Processes and Landforms, 23: 527–544, [External LinkDOI].
Muleta, S., Yohannes, F. and Rashid, S. M. (2006), “Soil erosion assessment of Lake Alemaya catchment, Ethiopia”, Land Degradation & Development, 17: 333–341, [External LinkDOI].
Nijssen, B., Haddeland, I. and Lettenmaier, D. P. (1997), “Point evaluation of a surface hydrology model for BOREAS”, Journal of Geophysical Research, 102(D24): 29,367–29,378, [External LinkDOI].
Park, S. W., Mitchell, J. K. and Scarborough, J. N. (1982), “Soil-erosion simulation on small watersheds - a modified ANSWERS model”, Transactions of the ASAE, 25(6): 1581–1588.
Persicani, D. (1993), “Atrazine leaching into groundwater: comparison of five simulation models”, Ecological Modelling, 70(3–4): 239–261, [External LinkDOI].
Persicani, D. (1996), “Pesticide leaching into field soils: sensitivity analysis of four mathematical models”, Ecological Modelling, 84: 265–280, [External LinkDOI].
Ramanarayanan, T., Narasimhan, B. and Srinivasan, R. (2005), “Characterization of Fate and Transport of Isoxaflutole, a Soil-Applied Corn Herbicide, in Surface Water Using a Watershed Model”, Journal of Agricultural and Food Chemistry, 53: 8848–8858, [External LinkDOI].
Rode, M. and Lindenschmidt, K.-E. (2001), “Distributed Sediment and Phosporus Transport Modeling on a Medium Sized Catchment in Central Germany”, Physics and Chemistry of the Earth (B), 26(7–8): 635–640, [External LinkDOI].
Röpke, B., Bach, M. and Frede, H.-G. (2004), “DRIPS – a DSS for estimating the input quantity of pesticides for German river basins”, Environmental Modelling & Software, 19(11): 1021–1028, [External LinkDOI].
Rosenthal, W. D., Srinivasan, R. and Arnold, J. G. (1995), “Alternative river management using a linked GIS-hydrology model”, Transactions of the ASAE, 38(3): 783–790.
Rudra, R. P., Dickinson, W. T. and Wall, G. J. (1985), “Application of the CREAMS model in southern Ontario conditions”, Transactions of the ASAE, 28(4): 1233–1240.
Sabbagh, G. J., Geleta, S., Elliott, R. L., Williams, J. R. and Griggs, R. H. (1993), “Modification of EPIC to simulate pesticide activities - EPIC-PST”, Transactions of the ASAE, 34(4): 1683–1692.
Schimming, C.-G., Mette, R., Reiche, E.-W., Schrautzer, J. and Wetzel, H. (1995), “Stickstoffflüsse in einem typischen Agrarökosystem Schleswig-Holsteins. Meßergebnisse, Bilanzen, Modellvalidierung (Nitrogen fluxes in a typical agroecosystem in Schleswig-Holstein – measurements, budgets, model validation)”, Journal of Plant Nutrition and Soil Science (Zeitschrift für Pflanzenernährung und Bodenkunde), 158(4): 313–322, [External LinkDOI].
Schmidt, J., von Werner, M. and Michael, A. (1999), “Application of the EROSION 3D model to the CATSOP watershed, The Netherlands”, Catena, 37(3–4): 449–456, [External LinkDOI].
Shaaban, Z. and Elprince, A. M. (1989), “A simulation model for the fate of pesticide residues in a field soil”, Plant and Soil, 114: 187–195, [External LinkDOI].
Tarboton, K. C., Wallender, W. W. and Raghuwanshi, N. S. (2002), “2-D saturated-unsaturated zone irrigation and drainage model: Part I. Theory”, Transactions of the ASAE, 45(5): 1353–1363.
Thiéry, D. and Amraoui, N. (2001), “Hydrological Modelling of the Saone Basin Sensitivity to the Soil Model”, Physics and Chemistry of the Earth (B), 26(5–6): 467–472, [External LinkDOI].
Tiktak, A., de Nie, D., van der Linden, T. and Kruijne, R. (2002), “Modelling the leaching and drainage of pesticides in the Netherlands: the GeoPEARL model”, Agronomie, 22(4): 373–387, [External LinkDOI].
Tiktak, A., Boesten, J. J. T. I., van der Linden, A. M. A. and Vanclooster, M. (2006), “Mapping Ground Water Vulnerability to Pesticide Leaching with a Process-Based Metamodel of EuroPEARL”, Journal of Environmental Quality, 35(4): 1213–1226, [External LinkDOI].
Tournebize, J., Watanabe, H., Takagi, K. and Nishimura, T. (2006), “The development of a coupled model (PCPF–SWMS) to simulate water flow and pollutant transport in Japanese paddy fields”, Paddy and Water Environment, 4: 39–51, [External LinkDOI].
Vanclooster, M., Boesten, J. J. T. I., Trevisan, M., Brown, C. D., Capri, E., Eklo, O. M., Gottesbüren, B., Gouy, V. and van der Linden, A. M. A. (2000), “A European test of pesticide-leaching models: methodology and major recommendations”, Agricultural Water Management, 44(1–3): 1–19, [External LinkDOI].
Vithayathil, F. J., Boast, C. W., Hoener, D. M. and Commoner, B. (1979), “A Systems Approach to Evaluate Nutrient and Pesticide Transport from Artificially Drained Cropland”, Environmental Management, 3: 123–132, [External LinkDOI].
Walker, A., Welch, S. J., Melacini, A. and Moon, Y.-H. (1996), “Evaluation of three pesticide leaching models with experimental data for alachlor, atrazine and metribuzin”, Weed Research, 36(1): 37–47, [External LinkDOI].
Wang, S. H., Huggins, D. G., Frees, L., Volkman, C. G., Lim, N. C., Baker, D. S., Smith, V. and deNoyelles Jr, F. (2005), “An integrated modelling approach to total watershed management: water quality and watershed assessment of Cheney Reservoir, Kansas, USA”, Water, Air, & Soil Pollution, 164(1–4): 1–19, [External LinkDOI].
Watanabe, H. and Takagi, K. (2000), “A Simulation Model for Predicting Pesticide Concentrations in Paddy Water and Surface Soil. I. Model Development”, Environmental Technology, 21(12): 1379–1391.
Wauchope, R. D., Ahuja, L. R., Arnold, J. G., Bingner, R., Lowrance, R., van Genuchten, M. T. and Adams, L. D. (2003), “Software for pest-management science: computer models and databases from the United States Department for Agriculture - Agricultural Research Service”, Pest Management Science, 59: 691–698, [External LinkDOI].
Weinthal, E., Vengosh, A., Marei, A., Gutierrez, A. and Kloppmann, W. (2005), “The Water Crisis in the Gaza Strip: Prospects for Resolution”, Ground Water, 43(5): 653–660, [External LinkDOI].
Wu, L., Baker, J. M. and Allmaras, R. R. (1995), “Numerical and field-evaluation of soil-water sampled by suction lysimeters”, Journal of Environmental Quality, 24(1): 147–152.
Yan, J. and Haan, C. T. (1991), “Multiobjective parameter-estimation for hydrologic-models - weighting of errors”, Transactions of the ASAE, 34(1): 135–141.
Yarnal, B., Lakhtakia, M. N., Yu, Z., White, R. A., Pollard, D., Miller, D. A. and Lapenta, W. M. (2000), “A linked meteorological and hydrological model system: the Susquehanna River Basin Experiment (SRBEX)”, Global and Planetary Change, 25(1–2): 149–161, [External LinkDOI].
Yoon, K. S., Yoo, K. H., Soileau, J. M. and Touchton, J. T. (1992), “Simulation of sediment and plant nutrient losses by the CREAMS water-quality model”, Water Resources Bulletin, 28: 1013–1021.
Young, R. A., Onstad, C. A., Bosch, D. D. and Anderson, W. P. (1989), “AGNPS - a nonpoint-source pollution model for evaluating agricultural watersheds”, Journal of Soil and Water Conservation, 44(2): 168–173.