[Balsari, P., Marucco, P., Tamagnone, M. (2005). A system to assess the mass balance of spray applied to tree crops. Transactions of the ASABE. Vol. 48(5), 1689-1694.]Search in Google Scholar
[Chahine, A. (2011). Modelling of aerial dispersion of pesticides from local to regional scales, influence of infrastructures and quantification of levels of exposure. PhD Thesis University of Montpellier (in French) 184p. Link available on Dec 9th 2024: https://theses.fr/2011NSAM0037?domaine=theses]Search in Google Scholar
[Cheraiet, A., Naud, O., Carra, M., et al. (2022). Evaluation of the distribution of spray deposits within a vine canopy from measurements on artificial targets and real leaves. Oeno One. Vol. 56(4).]Search in Google Scholar
[Cheraiet, A., Codis, S., Lienard, et al. (2024). EvaSprayViti: a flexible test bench for comparative assessment of the 3D deposition efficiency of vineyard sprayers at multiple growth stages Biosystems Engineering. Vol. 241(3), 1-14. https://dx.doi.org/10.1016/j.biosystemseng.2024.03.008.]Search in Google Scholar
[Djouhri, M. 2022. Modelling of spray distribution and spray drift of pesticides during a spray application and their contribution to bystander exposure: case of viticulture. PhD thesis University of Montpellier (in French), 189p. Link available on Dec 9th, 2024: https://ged.scdi-montpellier.fr/florabium45/jsp/nnt.jsp?nnt=2022UMONG073.]Search in Google Scholar
[Djouhri, M., Loubet, B., Bedos, C., et al. (2023). ADDI-Spraydrift: A comprehensive model of pesticide spray drift with an assessment in vineyards, Biosystems Engineering. Vol. 231, 57-77. https://doi.org/10.1016/j.biosystemseng.2023.05.008.]Search in Google Scholar
[Fritz, B.K., Hoffmann, W.C., Martin, D.E., Butts, B.K. (2018). Mass Balance and Swath Displacement Evaluations from Agricultural Application Field Trials. In Pesticide Formulation and Delivery Systems: 38th Symposium on Innovative Application, Formulation and Adjuvant Technologies. New Orleans, LA. ASTM Int Comm E35 Pesticides Antimicrobials & Alternat Control Agents, volume 1610, 11-23. https://doi.org/10.1520/STP161020170204.]Search in Google Scholar
[Gil, Y., Sinfort, C., Brunet, Y. (2007). Atmospheric loss of pesticides above an artificial vineyard during air-assisted spraying. Atmospheric Environment. Volume 41, 2945-2957. https://doi.org/10.1016/j.atmosenv.2006.12.019.]Search in Google Scholar
[Grella, M., Marucco, P., Oggero, G., Manzone, M., (2022). Environmental Evaluation of Vineyard Airblast Sprayers Through a Comprehensive Spray Mass-Balance Approach. In: Biocca, M., Cavallo, E., Cecchini, M., Failla, S., Romano, E. (eds) Safety, Health and Welfare in Agriculture and Agro-food Systems. SHWA 2020. Lecture Notes in Civil Engineering, 252. Springer, Cham. https://doi.org/10.1007/978-3-030-98092-4_39.]Search in Google Scholar
[Holterman, H. J., Van de Zande, J. C., Huijsmans, J. F. M., Wenneker, M. (2017). An empirical model based on phenological growth stage for predicting pesticide spray drift in pome fruit orchards. Biosystems Engineering. Vol. 154, 46–61. https://doi.org/10.1016/j.biosystemseng.2016.08.016]Search in Google Scholar
[Jensen, P.K. and Olesen M.H. (2014). Spray mass balance in pesticide application: A review. Crop Protection, volume 61, 23-31. https://doi.org/10.1016/j.cropro.2014.03.006]Search in Google Scholar
[Pergher, G. & Petris, R. (2007). Pesticide Dose Adjustment in Vineyard Spraying and Potential for Dose Reduction. Agricultural Engineering International: the CIGR Ejournal. X.]Search in Google Scholar
[Salyani, M., Farooq, M., Sweeb, RD. (2007). Spray deposition and mass balance in citrus orchard applications. Transactions of the ASABE, 50(6), 1963-1969.]Search in Google Scholar
[Teske, M. E., Thistle, H. M., & Ice, G. G. (2003). Technical Advances In Modeling Aerially Applied Sprays. Transactions of the ASABE, 46(4), 985–996. https://doi.org/10.13031/2013.13955]Search in Google Scholar
[Zadoks, J.C. (1974). A decimal code for the growth stages of cereals, Weed Research, volume 14, 415–421.]Search in Google Scholar