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A theoretical underpinning of the pesticide Groundwater Ubiquity Score (GUS) Cover

A theoretical underpinning of the pesticide Groundwater Ubiquity Score (GUS)

Open Access
|Aug 2024

References

  1. AERU, 2024. PPDB: Pesticide properties database. Accessed on April 7, 2024 at https://sitem.herts.ac.uk/aeru/ppdb/en/index.htm
  2. Ahuja, L.R., Ma, Q.L., Rojas, K.W., Boesten, J.J.T.I., Farahani, H.J., 1996. A field test of root zone water quality model–pesticide and bromide behavior. Pestic. Sci., 48, 101–108. https://doi.org/10.1002/(SICI)1096-9063(199610)48:2<101::AID-PS431>3.0.CO;2-Y
  3. Asano, Y., and Uchida, T., 2012. Flow path depth is the main controller of mean base flow transit times in a mountainous catchment, Water Resour. Res., 48, W03512, https://doi.org/10.1029/2011WR010906
  4. Baker, J.L., Lallen, J.M., Johnson, H.P., 1978. Effect of tillage systems on runoff losses of pesticides. A rainfall simulation study. Transactions of the ASAE 21, 886–892.
  5. Beulke, S., Brown, C.D., 2001. Evaluation of methods to derive pesticide degradation parameters for regulatory modelling. Biol. Fertil. Soils, 33, 558–564. https://doi.org/10.1007/s003740100364
  6. Camobreco, V.J., Richards, B.K., Steenhuis, T.S., Peverly, J.H., McBride, M.B., 1996. Movement of heavy metals through undisturbed and homogenized soil columns. Soil Science, 161, 11, 740–750. https://doi.org/10.1097/00010694-199611000-00003
  7. Darnault, C.J.G., Steenhuis, T.S., Garnier, P., Kim, Y.J., Jenkins, M.B., Ghiorse, W.C., Parlange, J.Y., 2004. Preferential flow and transport of Cryptosporidium parvum oocysts through the vadose zone: Experiments and modeling. Vadose Zone Journal, 3, 262–270.https://doi.org/10.2136/vzj2004.2620
  8. Demir, A.E.A., Dilek, F.B., Yetis U., 2019. A new screening index for pesticides leachability to groundwater. J. Environ. Manag,, 231, 1193–1202. https://doi.org/10.1016/j.jenvman.2018.11.007
  9. Di, H.J., Kookana, R.S, Aylmore, L.A.G., 1995. Application of a simple-model to assess the ground-water contamination potential of pesticides. Soil Research, 33, 1031–1040. https://doi.org/10.1071/SR9951031
  10. Domagalski, J.L., Johnson, H.M., 2011. Subsurface transport of orthophosphate in five agricultural watersheds, USA. Journal of Hydrology, 409, 1–2, 157–171. https://doi.org/10.1016/j.jhydrol.2011.08.014
  11. Donald, D.B., Block, H., Wood, J., 1997. Role of ground water on hexachlorocyclohexane (Lindane) detections in surface water in western Canada. Environmental Toxicology and Chemistry, 16, 1867–1872. https://doi.org/10.1002/etc.5620160915
  12. Fisher, I.J., Phillips, P.J., Bayraktar, B.N., Chan, S., McCarthy, B.A., Sandstrom, M.W., 2021. Pesticides and their degradates in groundwater reflect past use and current management strategies, Long Island, New York, USA. Sci. Total Environ., 15, 752, 141895. https://doi.org/10.1016/j.scitotenv.2020.141895
  13. Germann, P., Beven, K., 1981. Water flow in soil macropores I. An experimental approach. Journal of Soil Science, 32, 1, 1–13. https://doi.org/10.1111/j.1365-2389.1981.tb01681.x
  14. Gramatica, P., di Guardo, A., 2002. Screening of pesticides for environmental partitioning tendency. Chemosphere, 47, 9, 947–956. https://doi.org/10.1016/S0045-6535(02)00007-3
  15. Guan, Y., Wei, J., Zhang, D., Zu, M., Zhang, L., 2013. To identify the important soil properties affecting dinoseb adsorption with statistical analysis. The Scientific World Journal, 362854. https://doi.org/10.1155/2013/362854
  16. Gustafson, D.I., 1989. Groundwater ubiquity score: A simple method for assessing pesticide leachability. Environmental Toxicology and Chemistry, 8, 4, 339–357. https://doi.org/10.1002/etc.5620080411
  17. Hamaker, J.W., 1975. The interpretation of soil leaching experiments. In: Haque, R., Freed, V.H. (Eds): Environmental Dynamics of Pesticides. Springer US, pp. 115–133. https://doi.org/10.1007/978-1-4684-2862-9_8
  18. Harmon O'Driscoll, J., Siggins, A., Healy, M.G., McGinley, J., Mellander, P.E., Morrison, L., Ryan, P.C., 2022. A risk ranking of pesticides in Irish drinking water considering chronic health effects Sci. Total Environ., 829, 154532.
  19. Hassanpour, B., Richards, B.K., Goehring, L.D., Parlange, J.-Y., Steenhuis, T.S., 2019. Predicting the fate of preferentially moving herbicides. Vadose Zone Journal, 18, 1, 1–11. https://doi.org/10.2136/vzj2018.10.0193
  20. Hutson, J.L., Wagenet, R.J., 1993. A pragmatic field-scale approach for modeling pesticides. Journal of Environmental Quality, 22, 494–499. https://doi.org/10.2134/jeq199300472425002200030014x
  21. INCHEM, 2024. Carbaryl. International Programme on Chemical Safety (IPCS) accessed on April 6, 2024, at https://www.inchem.org/documents/ehc/ehc/ehc153.htm#Sub-SectionNumber:5.1.3
  22. Jarvis, N.J., 2007. A review of non-equilibrium water flow and solute transport in soil macropores: principles, controlling factors and consequences for water quality. European Journal of Soil Science, 71, 3, 279–302. https://doi.org/10.1111/ejss.12973
  23. Jung, G.H., Lee, H.S., Lim, S.J., Choi, H., 2024. Evaluation of soil pesticide leaching to groundwater using undisturbed lysimeter: development of the pesticide groundwater leaching scoring system (PLS). Environ Sci. Pollut. Res., 31, 21973–21985. https://doi.org/10.1007/s11356-024-32595-5
  24. Jury, W.A., Spencer, W.F., Farmer, W.J., 1983. Behavior assessment model for trace organics in soil: I. Model description. Journal of Environmental Quality, 12, 4, 558–564. https://doi.org/10.2134/jeq1983.00472425001200040025x
  25. Jury, W.A., Spencer, W.F., Farmer, W.J., 1984. Behavior assessment model for trace organics in soil: iv. Review of experimental evidence. Journal of Environmental Quality, 13, 580–586. https://doi.org/10.2134/jeq1984.00472425001300040014x
  26. Kaiglová, J., Langhammer, J., 2014. Analysis of efficiency of pollution reduction measures in rural basin using MIKE Basin model. Case study: Olšava River Basin. Journal of Hydrology and Hydromechanics, 62, 43–54. https://doi.org/10.2478/johh-2014-0007
  27. Kladivko, E.J., Van Scoyoc, G.E., Monke, E.J., Oates, K.M., Pask, W., 1991. Pesticide and nutrient movement into subsurface tile drains on a silt loam soil in Indiana. Journal of Environmental Quality, 20, 264–270. https://doi.org/10.2134/jeq1991.00472425002000010043x
  28. Larsson, M.H., Jarvis, N.J., 2000. Quantifying interactions between compound properties and macropore flow effects on pesticide leaching. Pest Management Science, 56, 2, 133–141. https://doi.org/10.1002/(SICI)1526-4998(200002)56:2<133::AID-PS103>3.0.CO;2-N
  29. Li, Y., Lv, G., Shao, H., Dai, Q., Du, X., Liang, D., Kuang, S., Wang, D., 2021. Determining the influencing factors of preferential flow in ground fissures for coal mine dump eco-engineering. PeerJ, 9, e10547. https://doi.org/10.7717/peerj.10547
  30. Meeks, Y.J., Dean, J.D., 1990. Evaluating groundwater vulnerability to pesticides. Journal of Water Resources Planning and Management, 116, 5, 693–707. https://doi.org/10.1061/(ASCE)0733-9496(1990)116:5(693)
  31. Miller, J.J., Foroud, N., Hill, B.D., Lindwall, C.W., 1995. Short communication: Herbicides in surface runoff and groundwater under surface irrigation in southern Alberta. Canadian Journal of Soil Science, 75, 1, 145–148. https://doiorg.proxy.library.cornell.edu/10.4141/cjss95-018
  32. National Center for Biotechnology Information, 2024. PubChem Compound Summary for CID 2943, Chlorthal-dimethyl. Retrieved on April 4, 2024 from https://pubchem.ncbi.nlm.nih.gov/compound/Chlorthal-dimethyl.
  33. NSCEP, 2014. Technical factsheet on Dinoseb. Retrieved on April 5 from https://nepis.epa.gov/Exe/ZyPURL.cgi?Dockey=P1012HTC.txt
  34. Papa, E., Castiglioni, S., Gramatica, P., Nikolayenko, V., Kayumov, O., Calamari, D., 2004. Screening the leaching tendency of pesticides applied in the Amu Darya Basin (Uzbekistan). Water Research, 38, 16, 3485–3494. https://doi.org/10.1016/j.watres.2004.04.053
  35. Pawlowski, S., Aicher, L., Berends, A., Curtis-Jackson, P., Häner, A., Hollender, J., Jene, B., Jenner, K., Redman, A., Sanders, G., Vallotton, N., Wang, N., Wheeler, J.R., 2023. Mobility in the context of exposure-based assessment of chemicals for drinking water resource protection. Integr. Environ. Assess. Manag., 19, 775–791. https://doi.org/10.1002/ieam.4705
  36. Rao, P.S.C., Hornsby, A.G., Jessup, R.E., 1985. Indices for ranking the potential for pesticide contamination of ground-water. Proceedings Soil and Crop Science Society of Florida, 44, 1–8.
  37. Richards, B.K., Peraginangin, N., Steenhuis, T.S., Geohring, L.D., 2003. The unintentional secret. Journal of Soil and Water Conservation, 58, 5, 104A–105A. https://www.jswconline.org/content/58/5/104A
  38. Ritsema, C.J., Dekker, L.W., Nieber, J. L., Steenhuis, T.S., 1998. Modeling and field evidence of finger formation and finger recurrence in a water-repellent sandy soil. Water Resources Research, 34, 4, 555–567. https://doi.org/10.1029/97WR02407
  39. Ritter, W.F., Chirnside, A.E.M., Scarborough, R.W., 1996. Leaching of dicamba in a coastal plain soil. Journal of Environmental Science and Health. Part A: Environmental Science and Engineering and Toxicology, 31, 3, 505–517. https://doi.org/10.1080/10934529609376371
  40. Sahoo, B. Ray, C., Wade, H.F., 2005. Pesticide prediction in groundwater in North Carolina domestic wells using artificial neural networks. Ecological Modelling, 183, 29–46, https://doi.org/10.1016/j.ecolmodel.2004.07.021
  41. Scotter, D., 1978. Preferential solute movement through larger soil voids. I. Some computations using simple theory. Soil Research, 16, 3, 257. https://doi.org/10.1071/SR9780257
  42. Shipitalo, M.J., Edwards, W.M., Redmond, C.E., 1994. Comparison of water movement and quality in earthworm burrows and pan lysimeters. Journal of Environmental Quality, 23, 1345–1351. https://doi.org/10.2134/jeq1994.00472425002300060031x
  43. Sinkevich, M.G., Jr, Walter, M.T., Lembo, A.J., Jr, Richards, B.K., Peranginangin, N., Aburime, S.A., Steenhuis, T.S., 2005. A GIS-based ground water contamination risk assessment tool for pesticides. Groundwater Monitoring & Remediation, 25, 82–91. https://doi.org/10.1111/j.1745-6592.2005.00055.x
  44. Song, X., 2005. Carbofuran. In: Wexler, P. (Ed.): Encyclopedia of Toxicology, 2nd Ed. Elsevier, pp 417–418.
  45. Spadotto, C.A., 2002. Screening method for assessing pesticide leaching potential. In: Revista de Ecotoxicologia e meio Ambiente, pp. 69–78.
  46. Starr, J.L., Parlange, J.-Y., Frink, C.R., 1986. Water and chloride movement through a layered field soil. Soil Sci. Soc. Am. J., 50, 1384 1390.
  47. Steenhuis, T.S. Walter, M.F., 1980. Closed form solution for pesticide loss in runoff water. ASAE Trans., 23, 615–620, 628.
  48. Steenhuis, T.S., Boll, J., Shalit, G., Selker, J.S., Merwin, I.A., 1994. A simple equation for predicting preferential flow solute concentrations. Journal of Environmental Quality, 23, 5, 1058–1064. https://doi.org/10.2134/jeq1994.00472425002300050030x
  49. Steenhuis, T.S., Bodnar, M., Geohring, L.D., Aburime, S.-A., Wallach, R., 1997. A simple model for predicting solute concentration in agricultural tile lines shortly after application. Hydrol. Earth Syst. Sci., 1, 823–833. https://doi.org/10.5194/hess-1-823-1997
  50. Schwarz, E., Khurana, S., Chakrawal, A., Chavez Rodriguez, L., Wirsching, J., Streck, T., Wirsching, J., Manzoni, S., Thullner, M., Pagel, H., 2022. Spatial control of microbial pesticide degradation in soil: a model-based scenario analysis. Environ. Sci. Technol., 56, 144, 27–38. https://doi.org/10.1021/acs.est.2c03397.
  51. Tesoriero, A.J., Duff, J.H., Wolock, D.M., Spahr, N.E., Almendinger, J. E., 2009. Identifying pathways and processes affecting nitrate and orthophosphate inputs to streams in agricultural watersheds. Journal of Environmental Quality, 38, 5, 1892–1900. https://doi.org/10.2134/jeq2008.0484\
  52. University of Hertfordshire, 2024. PPDB: Pesticide Properties DataBase. http://sitem.herts.ac.uk/aeru/ppdb/en/index.htm last accessed June 14, 2024.
  53. van der Molen, W.H., 1956. Desalinization of saline soils as a column process. Soil Sci., 81, 19–27.
  54. Vogue, P.A., Kerle, E.A., Jenkins, J.J., 1994. OSU Extension pesticide properties database. http://npic.orst.edu/ingred/ppd-move.htm (accessed April 1, 2024)
  55. Wauchope, R.D., Buttler, T.M., Hornsby, A.G., AugustijnBeckers, P.W.M., Burt, J.P., 1992. SCS/ARS/CES pesticides properties database for environmental decision making. Rev. Environ. Contam. Toxicol., 123, 1–157.
  56. Wilkerson, M.R., Kim, K.D., 1986. cited by Gustafson (1989). The pesticide contamination prevention act: setting specific numerical values. California Department of Food and Agriculture, Environmental Monitoring and Pest Management, Sacramento, CA.
  57. Zaki, M.H, Moran, D., Harris D., 1982. Pesticides in groundwater: the Aldicarb story in Suffolk County, NY. Am. J. Public Health, 72, 1982, 1391–1395.
DOI: https://doi.org/10.2478/johh-2024-0016 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 349 - 361
Submitted on: Apr 17, 2024
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Accepted on: Jun 17, 2024
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Published on: Aug 15, 2024
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Tammo S. Steenhuis, Naaran Brindt, Steven Pacenka, Brian K. Richards, J.-Yves Parlange, Bahareh Hassanpour, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.