茶园应用植保无人飞机的可行性评价

楚博, 罗逢健, 罗宗秀, 刘岩, 楼正云, 陈华才, 蔡晓明

茶叶科学 ›› 2021, Vol. 41 ›› Issue (2) : 203-212.

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茶叶科学 ›› 2021, Vol. 41 ›› Issue (2) : 203-212. DOI: 10.13305/j.cnki.jts.20210315.001
研究报告

茶园应用植保无人飞机的可行性评价

  • 楚博1, 罗逢健1, 罗宗秀1, 刘岩1, 楼正云1, 陈华才2, 蔡晓明1,*
作者信息 +

Feasibility Evaluation of the Appilcation of Unmanned Aerial Vehicle for Tea Plant Protection

  • CHU Bo1, LUO Fengjian1, LUO Zongxiu1, LIU Yan1, LOU Zhengyun1, CHEN Huacai2, CAI Xiaoming1,*
Author information +
文章历史 +

摘要

为评估植保无人飞机在茶园应用的可行性,在茶园测试了无人飞机施药的雾滴沉积分布、对小贯小绿叶蝉(Empoasca onuki)防治效果,以及6种农药在茶叶中残留量。结果表明,供试的无人飞机喷雾喷头、飞防助剂对无人飞机喷雾的雾滴沉积分布影响不显著。无人飞机施药的雾滴大小、雾滴密度、沉积量等均优于背负式电动喷雾器,但无人飞机施药的均匀性较差。常规用水量下,其药液沉积量的变异系数是常规背负式电动喷雾器的2.40倍。相同用药量、常规用水量下,无人飞机喷施虫螨腈对小贯小绿叶蝉的防效与背负式电动喷雾器相当。但当无人飞机作业用药量减少25%后,防效显著降低,仅为背负式电动喷雾器施药的58.70%。相同用药量、常规用水量下,无人飞机喷施虫螨腈、溴氰菊酯、茚虫威等6种化学农药后7 d,干茶中的农药残留量是背负式电动喷雾器施药1.20~2.44倍。鉴于无人飞机施药可显著提高茶叶中农药残留水平,茶园中推广、应用无人飞机施药应需谨慎。

Abstract

In order to evaluate the feasibility of unmanned aerial vehicle (UAV) for tea plant protection, the droplet deposition distribution, control effect on small green leafhoppers (Empoasca onukii), and pesticide residues between UAV and knapsack electric sprayer (KES) were tested and compared. The results show that nozzles and adjuvants of UAV had little effect on droplet deposition distribution. The droplet size, droplet density and droplet deposition of UAV were better than those of KES, but the uniformity of droplet deposition was worse. The coefficient of variation of droplet deposition by UAV was 2.44 times higher than that by KES with common spraying-water volumes. With the same amount of chlorfenapyr and common spraying-water volumes, the control efficacy to tea leafhopper by UAV was similar with that by KES. However, when the dosage of chlorfenapyr was reduced by 25%, the control efficacy by UAV was significantly declined. Under the same dosage and regular water consumption, the pesticide residues of 6 pesticides, including chlorfenapyr, deltamethrin, indoxacarb sprayed by UAV were 1.20-2.44 times higher than those by KES. Since significantly increasing the pesticide residues in tea, the application of UAV for tea plant protection should be treated with caution.

关键词

茶园 / 沉积分布 / 防治效果 / 农药残留 / 植保无人机

Key words

control efficacy / droplet deposition distribution / pesticide residue / tea garden / unmanned aerial vehicle

引用本文

导出引用
楚博, 罗逢健, 罗宗秀, 刘岩, 楼正云, 陈华才, 蔡晓明. 茶园应用植保无人飞机的可行性评价[J]. 茶叶科学. 2021, 41(2): 203-212 https://doi.org/10.13305/j.cnki.jts.20210315.001
CHU Bo, LUO Fengjian, LUO Zongxiu, LIU Yan, LOU Zhengyun, CHEN Huacai, CAI Xiaoming. Feasibility Evaluation of the Appilcation of Unmanned Aerial Vehicle for Tea Plant Protection[J]. Journal of Tea Science. 2021, 41(2): 203-212 https://doi.org/10.13305/j.cnki.jts.20210315.001
中图分类号: S571.1   

参考文献

[1] 陈宗懋. 无公害茶叶生产中的病虫综合防治[J]. 植保技术与推广, 2001, 21(9): 38-40.
Chen Z M.Integrated control of diseases and pests in the production of pollution-free tea[J]. Plant Protection Technology and Extension, 2001, 21(9): 38-40.
[2] 金书琴, 张斌. 无人机喷防的优势、问题和推广建议[J]. 农药科学与管理, 2019, 40(10): 15-20.
Jin S Q, Zhang B.Investigation on unmanned aerial vehicle in plant protection: advantages, problems and suggestions[J]. Pesticide Science and Administration, 2019, 40(10): 15-20.
[3] 许姗姗, 郭萧, 彭萍, 等. 几种喷雾器在茶园中的使用性能与效果对比研究[J]. 西南农业学报, 2012, 25(6): 2311-2315.
Xu S S, Guo X, Peng P, et al.Comparison on performances of several knapsack sprayers in tea garden[J]. Southwest China Journal of Agricultural Sciences, 2012, 25(6): 2311-2315.
[4] Xue X, Lan Y, Sun Z, et al.Develop an unmanned aerial vehicle based automatic aerial spraying system[J]. Computers Electronics in Agriculture, 2016, 128: 58-66.
[5] 田志伟, 薛新宇, 李林, 等. 植保无人机施药技术研究现状与展望[J]. 中国农机化学报, 2019, 40(1): 37-45.
Tian Z W, Xue X Y, Li L, et al.Research status and prospects of spraying tecmology of plant-protection unmanned aerial vehicle[J]. Journal of Chinese Agricultural Mechanization, 2019, 40(1): 37-45.
[6] 闫晓静, 杨代斌, 薛新宇, 等. 中国农药应用工艺学20年的理论研究与技术概述[J]. 农药学学报, 2019, 21(5/6): 908-920.
Yan X J, Yang D B, Xue X Y, et al.Overview in theories and technologies for pesticide application in China during the last two decades[J]. Chinese Journal of Pesticide Science, 2019, 21(5/6): 908-920.
[7] 袁会珠, 薛新宇, 闫晓静, 等. 植保无人飞机低空低容量喷雾技术应用与展望[J]. 植物保护, 2018, 44(5): 157-163, 185.
Yuan H Z, Xue X Y, Yan X J, et al.Applications and prospects in the unmanned aerial system for low-altitude and low-volume spray in crop protection[J]. Plant Protection. 2018, 44(5): 157-163, 185.
[8] 陈宗懋, 蔡晓明, 周利, 等. 中国茶园有害生物防控40年[J]. 中国茶叶, 2020, 42(1): 1-8.
Chen Z M, Cai X M, Zhou L, et al.Developments on tea plant pest control in past 40 years in China[J]. China Tea. 2020, 42(1): 1-8.
[9] 邱占奎, 袁会珠, 楼少巍, 等. 水溶性染色剂诱惑红和丽春红-G作为农药沉积分布的示踪剂研究[J]. 农药, 2007, 46(5): 323-325, 337.
Qiu Z K, Yuan H Z, Lou S W, et al.The research of water soluble dyes of allura red and ponceau-G as tracers for determing pesticide spray distribution[J]. Agrochemicals, 2007, 46(5): 323-325, 337.
[10] Cao L D, Cao C, Wang Y, et al.Visual determination of potential dermal and inhalation exposure using allura red as an environmentally friendly pesticide surrogate[J]. ACS Sustainable Chemistry & Engineering, 2017, 5(5): 3882-3889.
[11] Zhu H, Masoud S, Robert D.A portable scanning system for evaluation of spray deposit distribution[J]. Electronics in Agriculture, 2011, 76(1): 38-43.
[12] Reed J T, Smith D B.Droplet size and spray volume effects on insecticide deposit and mortality of heliothine (Lepidoptera: Noctuidae) larvae in cotton[J]. Journal of Economic Entomology, 2001, 94(3): 640-647.
[13] 兰玉彬, 彭瑾, 金济. 农药喷雾粒径的研究现状与发展[J]. 华南农业大学学报, 2016, 37(6): 1-9.
Lan Y B, Peng J, Jin J.Research status and development of pesticide spraying droplet size[J]. Journal of South China Agricultural University. 2016, 37(6): 1-9.
[14] 袁会珠, 王国宾. 雾滴大小和覆盖密度与农药防治效果的关系[J]. 植物保护, 2015, 41(6): 9-16.
Yuan H Z, Wang G B.Effects of droplet size and deposition density on field efficacy of pesticides[J]. Plant Protection, 2015, 41(6): 9-16.
[15] 王明, 王希, 何玲, 等. 植保无人机低空低容量喷雾在茶园的雾滴沉积分布及对茶小绿叶蝉的防治效果[J]. 植物保护, 2019, 45(1): 62-68.
Wang M, Wang X, He L, et al.Deposition distribution of pesticide droplets over the tea canopy and control efficiency against Empoasca flavescens sprayed by unmanned aerial vehicle (UAV)[J]. Plant Protection, 2019, 45(1): 62-68.
[16] 高圆圆, 张玉涛, 赵酉城, 等. 小型无人机低空喷洒在玉米田的雾滴沉积分布及对玉米螟的防治效果初探[J]. 植物保护, 2013, 39(2): 152-157.
Gao Y Y, Zhang Y T, Zhao Y C, et al.Primary studies on spray droplet distribution and control effects o aerial spraying using unmanned aerial vehicle (UAV) against the corn borer[J]. Plant Protection, 2013, 39(2): 152-157.
[17] 高圆圆, 张玉涛, 张宁, 等. 小型无人机低空喷洒在小麦田的雾滴沉积分布及对小麦吸浆虫的防治效果初探[J]. 作物杂志, 2013 (2): 139-142.
Gao Y Y, Zhang Y T, Zhang N, et al.Primary studies on spray droplets distribution and control effects of aerial spraying using unmanned aerial vehicle (UAV) against wheat midge[J]. Crops, 2013(2): 139-142.
[18] Qin W C, Qiu B J, Xue X Y, et al.Droplet deposition and control effect of insecticides sprayed with an unmanned aerial vehicle against plant hoppers[J]. Crop Protection, 2016, 85: 79-88.
[19] 刘迎, 潘波, 姜蕾, 等. 添加飞防助剂对无人机防治水稻病害的影响[J]. 农药, 2018, 4(57): 299-301.
Liu Y, Pan B, Jiang L, et al.Influence of adding adjuvants for aviation plant protection on control efficacy of rice disease using unmanned aerial vehicle[J]. Agrochemicals, 2018, 4(57): 299-301.
[20] 王明, 陈奕璇, 苏小计, 等. 添加助剂对植保无人飞机低容量喷雾在矮化密植苹果园中雾滴沉积分布及苹果黄蚜防治效果的影响[J]. 植物保护学报, 2019, 46(6): 1316-1323.
Wang M, Chen Y X, Su X J, et al.Effects of adjuvants in low volume spraying by unmanned aerial vehicle on the depositon distribution of pesticide droplets and control effiency against Aphis spiraecola in apple orchards of high-density dwarfing cultivation pattern[J]. Journal of Plant Protection, 2019, 46(6): 1316-1323.
[21] 何玲, 王国宾, 胡韬, 等. 喷雾助剂及施液量对植保无人机喷雾雾滴在水稻冠层沉积分布的影响[J]. 植物保护学报, 2017, 44(6): 1046-1052.
He L, Wang G B, Hu T, et al.influences of spray adjuvants and spray volume on the droplet deposition distribution with unmanned aeriaal vehicle (UAV) spraying on rice[J]. Journal of Plant Protection, 2017, 44(6): 1046-1052.
[22] 王昌陵, 宋坚利, 何雄奎, 等. 植保无人机飞行参数对施药雾滴沉积分布特性的影响[J]. 农业工程学报, 2017, 23(33): 109-116.
Wang C L, Song J L, He X K, et al.Effect of flight parameters on distribution characteristics of pesticide spraying droplets deposition of plant-protection unmanned aerial vehicle[J]. Transactions of the Chinese Society of agricultural Engineering, 2017, 23(33): 109-116.
[23] 陈盛德, 兰玉彬, 周志艳, 等. 小型植保无人机喷雾参数对橘树冠层雾滴沉积分布的影响[J]. 华南农业大学学报, 2017, 38(5): 97-102.
Chen S D, Lan Y B, Zhou Z Y, et al.Effects of spraying parameters of small plant protection UAV on droplets deposition distribution in citrus canopy[J]. Journal of South China Agricultural University, 2017, 38(5): 97-102.
[24] 苏小记, 王雅丽, 魏静, 等. 9种植保机械防治小麦穗蚜的农药沉积率与效果比较[J]. 西北农业学报, 2018, 27(1): 149-154.
Su X J, Wang Y L, Wei J, et al.Pesticide deposition percentage and contorl effect of nine kinds of corp protection machineries against wheat aphid[J]. Acta Agriculturae Boreali-Occidentalis Sinica, 2018, 27(1): 149-154.
[25] 刘春来, 聂思桥, 刘照清, 等. 两种施药器械对水稻中吡蚜酮残留量影响研究[J]. 农药科学与管理, 2020, 41(2): 25-30.
Liu C L, Nie S Q, Liu Z Q, et al.Study on the residues of pymetrozine in rice under two different spray equipment[J]. Pest Science and Administration, 2020, 41(2): 25-30.
[26] 陈宗懋. 茶叶中的农药残留最高允许限量(MRL)[J]. 农药科学与管理, 1992(4): 1-5.
Chen Z M.Pesticides maximum residue limit (MRL) in tea[J]. Pest Science and Administration, 1992(4): 1-5.
[27] 高万君, 张永志, 童蒙蒙, 等.茶园常用除草剂田间药效试验与残留动态[J]. 茶叶科学, 2019, 39(5): 587-594.
Gao W J, Zhang Y Z, Tong M M, et al.Weeds control effect and residues of several herbicides in tea gardens[J]. Journal of Tea Science, 2019, 39(5): 587-594.

基金

国家重点研发计划(2016YFD0200900)、浙江重点研发计划项目(2019C02033)、现代农业产业技术体系(CARS-19)、浙江省农业重大技术协同推广计划(2020XTTGCY01-02)

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