Drift and deposition of pesticide applied by UAV on pineapple plants under different meteorological conditions
Abstract
Keywords: UAV, spray drift, deposition, meteorological condition, pineapple
DOI: 10.25165/j.ijabe.20181106.4038
Citation: Wang J, Lan Y B, Zhang H H, Zhang Y L, Wen S, Yao W X, et al. Drift and deposition of pesticide applied by UAV on pineapple plants under different meteorological conditions. Int J Agric & Biol Eng, 2018; 11(6): 5–12.
Keywords
Full Text:
PDFReferences
Kirk I W. Aerial spray drift from different formulations of glyphosate. Transactions of the ASABE, 2000; 43(3): 555–559.
Ru Y, Zhou H P, Jia Z C, Wu X W, Fan Q N. Design and application of electrostatic spraying system. Journal of Nanjing Forestry University: Natural Science Edition, 2011; 35(1): 91–94. (in Chinese)
Huang Y, Hoffmann W C, Lan Y, Wu W, Fritz B K. Development of a spray system for an unmanned aerial vehicle platform. Transactions of the ASABE, 2009; 25(6): 803–809.
Zhang W, Hou Y R, Liu X, Lian Q, Fu X M, Zhang B, et al. Wind tunnel experimental study on droplet drift reduction by a conical electrostatic nozzle for pesticide spraying. Int J Agric & Biol Eng, 2017; 10(3): 87–94.
Otto S, Loddo D, Baldoin C. Spray drift reduction techniques for vineyards in fragmented landscapes. Journal of Environmental Management, 2015; 162(2): 290–298.
Pankaj G, Sirohi N P S, Mishra I M. Air flow characteristics of an air-assisted sprayer through horizontal crop canopy. Int J Agric & Biol Eng, 2012; 5(1): 1–6.
Qin W C, Xue X Y, Cui L F, Zhou Q Q, Xu Z F, Chang F L. Optimization and test for spraying parameters of cotton defoliant sprayer. Int J Agric & Biol Eng, 2016; 9(4): 63–72.
Gil E, Balsari P, Gallart M. Determination of drift potential of different flat fan nozzles on a boom sprayer using a test bench. Crop Protection, 2014; 56(2): 58–68.
Dodge T. New spray technology driven by drift. American Farm Industry News, 1998; March 1. Available online: http://www.farmindustrynews.com/new-spray-technology-driven-drift.
Nigar Y B. Assessment of buffer zone for aquatic organisms in pesticide application. Int J Agric & Biol Eng, 2016; 9(5): 227–234.
Sudheer K P, Panda R K. Digital image processing for determining drop sizes from irrigation spray nozzles. Agricultural Water Management, 2000; 45(2): 159–167.
Panneton B, Philion H, Theriault R, Khelifi M. Spray chamber evaluation of air-assisted spraying on potato plants. Transactions of the ASAE, 2000; 43(3): 529–534.
Law S E. Agricultural electrostatic spray application: a review of significant research and development during the 20th century. Journal of Electrostatics, 2001; 51(1): 25–42.
Yang X J, Yan H R, Xu S Z, Liu Z. Current situation and development trend of equipment for crop protection. Transactions of the CSAM, 2002; 33(6): 129–137. (in Chinese)
Smith D B, Bode L E, Gerard P D. Predicting ground boom spray drift. Transactions of the ASABE, 2000; 43(3): 547–553.
He X K, Zeng A J, He J. Effect of wind velocity from orchard sprayer on droplet deposit and distribution. Transactions of the CSAE, 2002; 18(4): 75–78. (in Chinese)
Liu X J, Zhou H P, Zheng J Q. Research advances of the technologies for spray drift control of pesticide application. Transactions of the CSAE, 2005; 21(1):186–190. (in Chinese)
Whitney J D, Salyani M, Churchill D B, Knapp J L, Whiteside J O, Little R C. A field investigation to examine the effects of the sprayer type, ground speed, and volume rate on spray deposition in Florida citrus. Journal of Agricultural Engineering Research, 1989; 42: 275–283.
Hewitt A J, Katan J, Aharonson N, Cohen E, Rubin B. Spray drift: impact of requirements to protect the environment. Crop Protection, 2000; 19: 623–627.
Vol N. Spraying technologies for cotton deposition and efficacy. Applied Engineering in Agriculture, 1996; 13(3): 287–296.
van de Zande J C, Huijsmans J F M, Porskamp H A J, Michielsen J M G P, Stallinga H, Holterman H. Spray techniques: how to optimize spray deposition and minimize spray drift. Environmentalist, 2008; 28: 9–17.
Hoffmann W C, Hewitt A J. Comparison of three imaging systems for water-sensitive papers. 2004; ASAE Annual Meeting, No: 041030.
Franz E, Bouse L F, Carlton J B, Kirk I W, Latheef M A. Aerial spray deposit relations with plant canopy and weather parameters. Transactions of the ASAE, 1998; 41(4): 959–966.
Lan Y, Hoffmann W C, Fritz B K, Martin D E, Lopez J D. Spray drift mitigation with spray mix adjuvants. Applied Engineering in Agriculture, 2008; 24(1): 5–10.
Xue X Y, Tu K, Qin W C, Lan Y B, Zhang H H. Drift and deposition of ultra-low altitude and low volume application in paddy field. Int J Agric & Biol Eng, 2014; 7(4): 23–28.
Fritz B K. Meteorological effects on deposition and drift of aerially applied sprays. Transactions of the ASABE, 2006; 49(5): 1295-1301.
Shi W Q, Sun W S, Xi J E, Chen J, Zuo D Q. China pineapple industry status and development countermeasures. Guangdong Agricultural Sciences, 2011; 3: 181–185. (in Chinese)
Chen S D, Lan Y B, Li J Y, Zhou Z Y, Liu A M, Mao Y D. Effect of wind field below unmanned helicopter on droplet deposition distribution of aerial spraying. Int J Agric & Biol Eng, 2017; 10(3): 67–77.
Lan Y B, Chen S D, Li J Y, Zhang Y L, Huang C, Yao W X, et al. Evaluation system of flying flight quality based on Beidou locating system. Chinese Patent, CN205563277U, 2016-09-07. (in Chinese)
Bird S L, Esterly D M, Perry S G. Off-target deposition of pesticides from agricultural aerial spray applications. Journal of Environmental Quality, 1996; 25(5): 1095–1104.
Copyright (c) 2018 International Journal of Agricultural and Biological Engineering