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dc.contributor.authorTorrentó, C.vi
dc.contributor.otherPrasuhn, V.vi
dc.contributor.otherSpiess, E.vi
dc.contributor.otherPonsin, V.vi
dc.contributor.otherMelsbach, A.vi
dc.date.accessioned2020-10-30T04:31:04Z-
dc.date.available2020-10-30T04:31:04Z-
dc.date.issued2018-
dc.identifier.issn1539-1663vi
dc.identifier.urihttp://tailieuso.tlu.edu.vn/handle/DHTL/9656-
dc.description.abstractConditions for preferential flow were promoted by applying heavy simulated rainfall shortly after pesticide application. In some of the experiments, preferential flow was also artificially simulated by injecting the solutes through a narrow tube below the root zone. With depth injection, preferential leaching of atrazine occurred shortly after application in both soil types, whereas with surface application, it occurred only in the moraine soil. Thereafter, atrazine transport was mainly through the porous soil matrix, although contributions of preferential flow were also observed. For all the application approaches and soil types, after 900 d, <3% of the applied amount of atrazine was recovered in the drainage water. Only uranine realistically illustrated the early atrazine breakthrough by transport through preferential flow. Uranine broke through during the first intense irrigation at the same time as atrazine. Bromide, however, appeared earlier than atrazine in some cases. The use of dye tracers as pesticide surrogates might assist in making sustainable decisions with respect to pesticide application timing relative to rainfall or soil potential for preferential flow.vi
dc.description.urihttps://acsess.onlinelibrary.wiley.com/doi/10.2136/vzj2017.01.0033vi
dc.languageenvi
dc.relation.ispartofseriesVadose Zone Journal, Volume 17, Issue 1 (2018), pp.1-18vi
dc.subjectDesethylatrazine/atrazine molar ratiovi
dc.subjectDesethylatrazinevi
dc.subjectDesisopropylatrazinevi
dc.subjectEvapotranspirationvi
dc.titleAdsorbing vs. Nonadsorbing Tracers for Assessing Pesticide Transport in Arable Soilsvi
dc.typeBBvi
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