Accesso libero

The Effect of Design and the Accelerated Wear Test of Agricultural Nozzles on the Resulting Droplet Size

, ,  e   
23 feb 2025
INFORMAZIONI SU QUESTO ARTICOLO

Cita
Scarica la copertina

Al-Taie, H. A. H. & Kadhim, N. S. (2023). The Effect of Power Sources in the Agricultural Tractor and the Developed Sprayer System on the Performance of the Electrical and Mechanical Sprayer System and some Performance Indicators of the Engine. IOP Conference Series: Earth and Environmental Science, 1262(9). https://doi.org/10.1088/1755-1315/1262/9/092005. Search in Google Scholar

ASABE. (2009). Spray nozzle classification by droplet spectra. ANSI/ASAE S572.1 W/Corr.1, 2009. Search in Google Scholar

Bissell, D., Lai, W., Stegmeir, M., Troolin, D., Pothos, S. & Lengsfeld, C. (2014). An approach to spray characterization by combination of measurement techniques. In ILASS Americas 26th Annual Conference on Liquid Atomization and Spray Systems. Portland. Search in Google Scholar

Bueno, M. R., Cunha, J. P. A. R. da & de Santana, D. G. (2017). Assessment of spray drift from pesticide applications in soybean crops. Biosystems Engineering, 154. https://doi.org/10.1016/j.biosystemseng.2016.10.017. Search in Google Scholar

Carter, O. W., Prostko, E. P. & Davis, J. W. (2017). The Influence of Nozzle Type on Peanut Weed Control Programs. Peanut Science, 44(2). https://doi.org/10.3146/ps17-4.1. Search in Google Scholar

Creech, C. F., Henry, R. S., Fritz, B. K. & Kruger, G. R. (2015). Influence of Herbicide Active Ingredient, Nozzle Type, Orifice Size, Spray Pressure, and Carrier Volume Rate on Spray Droplet Size Characteristics. Weed Technology, 29(2). https://doi.org/10.1614/wt-d-14-00049.1 Search in Google Scholar

Creech, C. F., Moraes, J. G., Henry, R. S., Luck, J. D. & Kruger, G. R. (2016). The Impact of Spray Droplet Size on the Efficacy of 2,4-D, Atrazine, Chlorimuron-Methyl, Dicamba, Glufosinate, and Saflufenacil. Weed Technology, 30(2). https://doi.org/10.1614/wt-d-15-00034.1. Search in Google Scholar

Dorr, G. J., Hewitt, A. J., Adkins, S. W., Hanan, J., Zhang, H. & Noller, B. (2013). A comparison of initial spray characteristics produced by agricultural nozzles. Crop Protection, 53. https://doi.org/10.1016/j.cropro.2013.06.017. Search in Google Scholar

Farias, M. A. G. L., Raetano, C. G., Chechetto, R. G., Ferreira-Filho, P. J., Guerreiro, J. C., Bonini, C. S. B., Prado, E. P. (2020). Spray nozzles and droplet size effects on soybean canopy deposits and stink bugs control in west region of São Paulo state - Brazil. Phytoparasitica, 48(2). https://doi.org/10.1007/s12600-020-00786-8. Search in Google Scholar

Ferguson, J. C., Chauhan, B. S., Chechetto, R. G., Hewitt, A. J., Adkins, S. W., Kruger, G. R. & O’Donnell, C. C. (2019). Droplet-size effects on control of chloris spp. with Six POST herbicides. Weed Technology, 33(1). https://doi.org/10.1017/wet.2018.99. Search in Google Scholar

Ferguson, J. C., Chechetto, R. G., Adkins, S. W., Hewitt, A. J., Chauhan, B. S., Kruger, G. R. & O’Donnell, C. C. (2018). Effect of spray droplet size on herbicide efficacy on four winter annual grasses. Crop Protection, 112. https://doi.org/10.1016/j.cropro.2018.05.020. Search in Google Scholar

Ferguson, J. C., Chechetto, R. G., Hewitt, A. J., Chauhan, B. S., Adkins, S. W., Kruger, G. R. & O’Donnell, C. C. (2016). Assessing the deposition and canopy penetration of nozzles with different spray qualities in an oat (Avena sativa L.) canopy. Crop Protection, 81, 14-19. https://doi.org/10.1016/j.cropro.2015.11.013 Search in Google Scholar

Ferreira, P. H. U., Thiesen, L. V., Pelegrini, G., Ramos, M. F. T., Pinto, M. M. D. & da Costa Ferreira, M. (2020). Physicochemical properties, droplet size and volatility of dicamba with herbicides and adjuvants on tank-mixture. Scientific Reports, 10(1). https://doi.org/10.1038/s41598-020-75996-5. Search in Google Scholar

Lafferty, C. L. & Tian, L. F. (2013). The impacts of pre-orifice and air-inlet design features on nozzle performance. https://doi.org/10.13031/2013.7343. Search in Google Scholar

Li, S., Chen, C., Wang, Y., Kang, F. & Li, W. (2021). Study on the atomization characteristics of flat fan nozzles for pesticide application at low pressures. Agriculture (Switzerland), 11(4). https://doi.org/10.3390/agriculture11040309. Search in Google Scholar

Liao, J., Hewitt, A. J., Wang, P., Luo, X., Zang, Y., Zhou, Z., O’donnell, C. (2019). Development of droplet characteristics prediction models for air induction nozzles based on wind tunnel tests. International Journal of Agricultural and Biological Engineering, 12(6). https://doi.org/10.25165/j.ijabe.20191206.5014. Search in Google Scholar

Liao, J., Luo, X., Wang, P., Zhou, Z., O’Donnell, C. C., Zang, Y. & Hewitt, A. J. (2020). Analysis of the influence of different parameters on droplet characteristics and droplet size classification categories for air induction nozzle. Agronomy, 10(2). https://doi.org/10.3390/agronomy10020256 Search in Google Scholar

McGinty, J., Baumann, P., Hoffmann, W. & Fritz, B. (2016). Evaluation of the Spray Droplet Size Spectra of Drift-reducing Agricultural Spray Nozzle Designs. American Journal of Experimental Agriculture, 11(3). https://doi.org/10.9734/ajea/2016/23785. Search in Google Scholar

Meyer, C. J., Norsworthy, J. K., Kruger, G. R. & Barber, T. L. (2016). Effect of Nozzle Selection and Spray Volume on Droplet Size and Efficacy of Engenia Tank-Mix Combinations. Weed Technology, 30(2). https://doi.org/10.1614/wt-d-15-00141.1. Search in Google Scholar

Milanowski, M., Subr, A., Combrzyński, M., Różańska-Boczula, M. & Parafiniuk, S. (2022a). Effect of Adjuvant, Concentration and Water Type on the Droplet Size Characteristics in Agricultural Nozzles. Applied Sciences (Switzerland), 12(12), 5821. https://doi.org/10.3390/app12125821. Search in Google Scholar

Milanowski, M., Subr, A. & Parafiniuk, S. (2022b). Evaluation of Different Internal Designs of Hydraulic Nozzles under an Accelerated Wear Test. Applied Sciences (Switzerland), 12(2). https://doi.org/10.3390/app12020889. Search in Google Scholar

Parafiniuk, S., Milanowski, M., Subr, A. & Krawczuk, A. (2017). Influence of surface tension of water on droplet size produced by flat jet nozzles. 295–300. https://doi.org/10.24326/fmpmsa.2017.53. Search in Google Scholar

Spraying Systems Co. (2014). TeeJet technologies, Catalogue 51A-M. Wheaton. Wheaton, Illinois USA. Search in Google Scholar

Subr, A., Al-Ahmadi, A. & Abbas, M. (2020). Effect of nozzle type and some locally used surfactants on the spray quality. Iraqi Journal of Agricultural Sciences, 51(3), 856-864. https://doi.org/10.36103/ijas.v51i3.1040 Search in Google Scholar

Subr, A. K., Alheidary, M. H. R. & Al-Ahmadi, A. H. (2019). The informatics adequacy on the spraying technology in Iraqi agricultural researches: A literature review. Journal of Physics: Conference Series, 1294(9), 092007. https://doi.org/10.1088/1742-6596/1294/9/092007. Search in Google Scholar

Vieira, B. C., Butts, T. R., Rodrigues, A. O., Golus, J. A., Schroeder, K. & Kruger, G. R. (2018). Spray particle drift mitigation using field corn (Zea mays L.) as a drift barrier. Pest Management Science, 74(9). https://doi.org/10.1002/ps.5041. Search in Google Scholar

Xiao, L., Zhu, H., Wallhead, M., Horst, L., Ling, P. & Krause, C. R. (2018). Characterization of biological pesticide deliveries through hydraulic nozzles. Transactions of the ASABE, 61(3). https://doi.org/10.13031/trans.12698. Search in Google Scholar

Yao, W., Lan, Y., Hoffmann, W. C., Li, J., Guo, S., Zhang, H. & Wang, J. (2020). Droplet size distribution characteristics of aerial nozzles by Bell206L4 helicopter under medium and low airflow velocity wind tunnel conditions and field verification test. Applied Sciences (Switzerland), 10(6). https://doi.org/10.3390/app10062179. Search in Google Scholar

Yates, W. E., Cowden, R. E. & Akesson, N. B. (1985). Drop size spectra from nozzles in high-speed airstreams. Transactions of the American Society of Agricultural Engineers, 28(2). https://doi.org/10.13031/2013.32268. Search in Google Scholar