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国外农业航空静电喷雾技术研究进展与借鉴
引用本文:张亚莉,黄鑫荣,王林琳,邓继忠,曾文,兰玉彬,Muhammad Naveed Tahir.国外农业航空静电喷雾技术研究进展与借鉴[J].农业工程学报,2021,37(6):50-59.
作者姓名:张亚莉  黄鑫荣  王林琳  邓继忠  曾文  兰玉彬  Muhammad Naveed Tahir
作者单位:1.华南农业大学工程学院,广州 510642;2.国家精准农业航空施药技术国际联合研究中心,广州 510642;2.国家精准农业航空施药技术国际联合研究中心,广州 510642;3.华南农业大学电子工程学院,广州 510642;4.Department of Agronomy, PMAS-Arid Agriculture University, Rawalpindi 46300, Pakistan
基金项目:广东省重点领域研发计划(2019B020221001);广东省科技计划项目(2018A050506073);广东省现代农业产业共性关键技术研发创新团队项目(2019KJ133);国家重点研发计划项目(2018YFD0200304)
摘    要:农业航空静电喷雾技术作为中国发展精准农业航空应用技术的内容之一,对农药的有效利用和减少环境污染有积极意义。农业航空静电喷雾技术在国外发展较早也相对成熟,美国已有应用于有人机的商业化产品,并在美国、巴西等国各类粮食作物、经济作物和杂草防治作业中开展了大规模田间应用。该研究首先从基础研究、田间应用和优化工作等方面梳理了国外农业航空静电喷雾技术的研究进展,分析了农业航空静电喷雾技术在增加雾滴沉积、减少飘移和具备低施药液量等方面的优势。在此基础上结合中国植保无人机快速发展的实际对研究和应用适合中国国情的农业航空静电喷雾技术进行思考,提出了农业航空静电喷雾技术的研究路线,最后从采用接触式等非感应式充电方式、开发农业航空静电喷雾的测量技术,以及思考荷质比作为衡量指标的意义等方面探讨了可进行深入研究的方向。中国农业航空静电喷雾技术研究特别在植保无人机静电喷雾技术方面的研究与应用有很大的发展空间,可参考国外经验,围绕航空静电喷雾技术的基础性研究、田间试验、成果转化、示范推广和服务指导全方面制定发展规划,把单一强调对雾滴带电的实现转向对技术系统的整体研究。

关 键 词:农业航空  植保  综述  静电喷雾  雾滴沉积  航空施药
收稿时间:2020/12/20 0:00:00
修稿时间:2021/3/13 0:00:00

Progress in foreign agricultural aviation electrostatic spray technologies and references for China
Zhang Yali,Huang Xinrong,Wang Linlin,Deng Jizhong,Zeng Wen,Lan Yubin,Muhammad Naveed Tahir.Progress in foreign agricultural aviation electrostatic spray technologies and references for China[J].Transactions of the Chinese Society of Agricultural Engineering,2021,37(6):50-59.
Authors:Zhang Yali  Huang Xinrong  Wang Linlin  Deng Jizhong  Zeng Wen  Lan Yubin  Muhammad Naveed Tahir
Institution:1.College of Engineering, South China Agricultural University, Guangzhou 510642, China; 2. National Center for International Collaboration Research on Precision Agricultural Aviation Pesticides Spraying Technology, Guangzhou 510642, China;2.National Center for International Collaboration Research on Precision Agricultural Aviation Pesticides Spraying Technology, Guangzhou 510642, China; 3.College of Electronic Engineering, South China Agricultural University, Guangzhou 510642, China; 4.Department of Agronomy, PMAS-Arid Agriculture University, Rawalpindi 46300, Pakistan
Abstract:Abstract: Abstract: Chemical pesticide residues have posed a great impact on crops and the ecological environment in recent years, as the prevention and control of crop diseases and pests have widely been used in agricultural production. Consequently, an aerial pesticide application technology has become an effective way for plant protection in modern agriculture. The powerful technology is characterized to reduce the numbers and residues of pesticides for the better effectiveness of pesticide application. Alternatively, a high-voltage electrostatic device is often used to charge the spray droplets in an electrostatic spray system. Specifically, the chemical liquid is atomized into droplets near the nozzle to obtain a charge of the same polarity as the nozzle. An electrostatic field is then formed between the nozzle and the crop target under the action of high-voltage static electricity. As such, the droplets of opposite polarity are quickly adsorbed on the front and back of crop targets during the spraying process. Aerial electrostatic spraying is a deep integration of electrostatic spray system and aviation pesticide spraying in precision agriculture. The droplets can quickly be deposited along the power line in the process of aircraft spraying, thereby greatly reducing the drift loss for highly efficient deposition of droplets. Furthermore, the electrostatic spray technology has achieved excellent control effects on crops, fruit trees, and greenhouse vegetables in field tests. The top countries of aerial electrostatic spray technology in the world are the United States and Brazil, in terms of technology usage, and innovation. Particularly, the electrostatic spray technology in the United States has been fully commercialized for the aviation spraying equipment. In addition, an efficient aircraft is highly required for large-scale planting and plant protection in vast arable land and mostly plains in some developing countries. The manned fixed-wing aircraft is mainly used in electrostatic spray systems at present. This review outlined the international development of aerial electrostatic spraying technology to further clarify two main lines of reports at home and aboard, ranging from basic theoretical research to commercialization process. An application level of technology was set to analyze in China. The research on aviation electrostatic spray technology in China has presented a promising increase trend, due mainly to small environmental and topographical impacts in field tests. Moreover, the unmanned aerial vehicle (UAV) has become the most suitable aircraft equipped with an electrostatic spray system after long-term research. However, large research gaps still remained in manned vehicles and lately commercial plant protection UAV, compared with the state-of-the-art electrostatic spray technologies overseas. There were also numerously repeated and invalid studies overlapped in the main parameters in China. Anyway, it is still necessary to delve into the specific interaction mechanism between the process of spraying droplets and the operating parameters. The industrialized development of aviation electrostatic spray system was also reviewed at the end, together with the development prospects. Some suggestions were listed as: (1) The performance of each charge needed to be elucidated in the aerial electrostatic spray system. (2) The measurement technology of charged droplet deposition was highly demanding to accurately evaluate the actual properties of electrostatic spray. (3) Measurement of charge-to-mass ratio was necessary to rethinking using the cutting-edged quantum theories. An ever-increasing demand is coming soon using aviation electrostatic spray system for crop protection.
Keywords:agricultural aviation  plant protection  review  electrostatic spray  droplet deposition  aerial pesticides application
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