Variable-rate spray system for unmanned aerial applications using lag compensation algorithm and pulse width modulation spray technology

被引:4
|
作者
Wang, Zhongkuan [1 ,2 ]
Wen, Sheng [1 ,2 ]
Lan, Yubin [1 ,2 ]
Liu, Yue [3 ]
Dong, Yingying [4 ]
机构
[1] South China Agr Univ, Coll Engn, Guangdong Lab Lingnan Modern Agr, Guangzhou 510642, Peoples R China
[2] Natl Ctr Int Collaborat Res Precis Agr Aviat Pest, Guangzhou, Peoples R China
[3] Anyang Quanfeng Aviat Plant Protect Technol Co Lt, Anyang, Peoples R China
[4] Chinese Acad Sci, Aerosp Informat Res Inst, Beijing, Peoples R China
基金
美国国家科学基金会;
关键词
prescription map; pulse width modulation (PWM); spray coverage; unmanned aerial application; variable-rate spraying control; ACCURACY;
D O I
10.4081/jae.2023.1547
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
To ensure that a variable-rate spray (VRS) system can perform unmanned aerial spray in accordance with a prescription map at different flight speeds, we examine in this paper such significant factors as the response time of the VRS system and the pressure fluctuation of the nozzle during the variable-rate spraying process. The VRS system uses a lag compensation algorithm (LCA) to counteract the droplet deposition position lag caused by the system response delay. In addition, pulse width modulated solenoid valves are used for controlling the flowrates of the nozzles on the variable-rate spray system, and a mathematical model was constructed for the spray rate (L min(-1)) and the relative proportion of time (duty cycle) each solenoid valve is open. The pressure drop and solenoid valve response time at different duty cycles (50 similar to 90%) were measured by indoor experiments. Meanwhile, the lag distance (LD), spray accuracy, and droplet deposition characteristics of the VRS system were tested by conducting outdoor experiments at different flight speeds (4m s(-1), 5m s(-1), 6m s(-1)). The results show that LCA can effectively reduce the LD. The LD values of the VRS system with LCA ranged from -0.27 to 0.78m with an average value of 0.32m, while without LCA, the LD values increased to 3.5 similar to 4.3m with an average value of 3.87m. The overall spray position accuracy was in the range of 91.56 similar to 97.32%. Furthermore, the spray coverage and deposition density, determined using water sensitive paper, were used to evaluate the spray application performance taking into account the spray volume applied. The VRS system can provide the most suitable spray volumes for insecticide and fungicide plant protection products. Based on a prescription map, the optimized VRS system can achieve accurate pesticide spraying as well as desirable spray coverage and deposition density.
引用
收藏
页数:14
相关论文
共 30 条
  • [1] Design of precision variable-rate spray system for unmanned aerial vehicle using automatic control method
    Lian, Qi
    Tan, Feng
    Fu, Xiaoming
    Zhang, Ping
    Liu, Xin
    Zhang, Wei
    INTERNATIONAL JOURNAL OF AGRICULTURAL AND BIOLOGICAL ENGINEERING, 2019, 12 (02) : 29 - 35
  • [2] Evaluation of ultrasonic sensor for variable-rate spray applications
    Jeon, Hong Y.
    Zhu, Heping
    Derksen, Richard
    Ozkan, Edal
    Krause, Charles
    COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2011, 75 (01) : 213 - 221
  • [3] Reducing Spray Volume across Developmental Stages of Apple with Variable-Rate Spray Technology
    Fessler, Lauren
    Wright, Wesley
    Lockwood, David
    Pietsch, Grace
    Kilpatrick, Kent
    Zhu, Heping
    Fulcher, Amy
    HORTSCIENCE, 2021, 56 (09) : S168 - S168
  • [4] Reducing Off-Target Pesticide Spray and Harm to Beneficial Insects with Variable-Rate, Intelligent Spray Technology
    Whaley, Laura
    Fessler, Lauren
    Fulcher, Joseph
    Fust, Cody
    Johnson, Jakob
    McAnally, Augustus
    Pietsch, Grace
    Sapienza, Emerson
    Sutt, Hannah
    Wright, Mason
    Wright, Wesley C.
    Zhu, Heping
    Fulcher, Amy
    HORTSCIENCE, 2023, 58 (09) : S113 - S113
  • [5] Increasing Sustainability of Pest Management in Apple Production By Coupling Reduced-rate Applications with Variable-rate Spray Technology
    Sutt, Hannah
    Johnson, Jakob
    Hansen, Zachariah R.
    Lockwood, David W.
    Fessler, Lauren
    Kilpatrick, Kent
    Lopez, Eleanor Phillips
    Zhu, Heping
    Fulcher, Joseph
    Pietsch, Grace
    Wright, Wesley C.
    McAnally, Augustus
    Fulcher, Amy
    HORTSCIENCE, 2022, 57 (09) : S104 - S105
  • [6] A Study of Spray Volume Prediction Techniques for Variable Rate Pesticide Application using Unmanned Aerial Vehicles
    Jeon, Dasom
    Jung, Hyun-jin
    Lee, Kyung-do
    Han, Junggon
    Park, Chanwon
    Han, Seunghoon
    Kim, Hojin
    JOURNAL OF BIOSYSTEMS ENGINEERING, 2025, 50 (01) : 21 - 32
  • [7] INVESTIGATION OF AN EXPERIMENTAL LASER SENSOR-GUIDED SPRAY CONTROL SYSTEM FOR GREENHOUSE VARIABLE-RATE APPLICATIONS
    Yan, T.
    Zhu, H.
    Sun, L.
    Wang, X.
    Ling, P.
    TRANSACTIONS OF THE ASABE, 2019, 62 (04) : 899 - 911
  • [8] A fixed-amount and variable-rate fertilizer applicator based on pulse width modulation
    Chen, Chang
    He, Peixiang
    Zhang, Jianjun
    Li, Xiaoxian
    Ren, Zhenyu
    Zhao, Jin
    He, Jiacheng
    Wang, Yang
    Liu, Hongbo
    Kang, Jie
    COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2018, 148 : 330 - 336
  • [9] Reducing the Nursery Pesticide Footprint with Laser-guided, Variable-rate Spray Application Technology
    Fessler, Lauren
    Fulcher, Amy
    Schneider, Liesel
    Wright, Wesley C.
    Zhu, Heping
    HORTSCIENCE, 2021, 56 (12) : 1572 - 1584
  • [10] Advancements in variable rate spraying for precise spray requirements in precision agriculture using Unmanned aerial spraying Systems: A review
    Taseer, Abbas
    Han, Xiongzhe
    COMPUTERS AND ELECTRONICS IN AGRICULTURE, 2024, 219