中国农业科学 ›› 2026, Vol. 59 ›› Issue (14): 3082-3093.doi: 10.3864/j.issn.0578-1752.2026.14.007

• 植物保护 • 上一篇    下一篇

牵引速度与作业距离对苹果园风送式喷雾机喷雾性能的交互作用

翟浩(), 余贤美, 王涛, 王来平, 王丹(), 薛晓敏   

  1. 山东省果树研究所, 山东泰安 271000
  • 收稿日期:2026-04-14 接受日期:2026-06-02 出版日期:2026-07-16 发布日期:2026-07-21
  • 通信作者:
    王丹,E-mail:
  • 联系方式: 翟浩,E-mail:zhaihao688@163.com。
  • 基金资助:
    国家现代农业产业技术体系(CARS-27); 山东省重点研发计划(2017CXGC0214)

Interactive Effects of Traction Speed and Operating Distance on Spraying Performance of an Air-Assisted Sprayer in Apple Orchards

ZHAI Hao(), YU XianMei, WANG Tao, WANG LaiPing, WANG Dan(), XUE XiaoMin   

  1. Shandong Institute of Pomology, Taian 271000, Shandong
  • Received:2026-04-14 Accepted:2026-06-02 Published:2026-07-16 Online:2026-07-21

摘要:

【目的】探究风送式喷雾机在苹果园作业时,作业距离与牵引速度对雾滴特性、沉积分布及农药沉积效率的影响,明确二者交互作用机制,为果园精准施药提供理论依据。【方法】以SS-1000型自走式风送喷雾机为对象,在宽行密植苹果园中开展双因素田间试验。试验设3个作业距离(0、0.5、1.0 m)和3个牵引速度(2.48、4.10、5.98 km·h-1),共9个处理组合。采用水敏纸法测定雾滴粒径(体积中径VMD)、雾滴密度和雾滴覆盖率,诱惑红示踪剂法结合分光光度法测定叶片沉积量、地面沉积量,计算农药沉积效率。通过极差分析和方差分析解析各因素的主效应及交互作用。【结果】在同一作业距离下,随牵引速度增加,雾滴粒径、雾滴覆盖率、叶片沉积量及地面沉积量呈下降趋势,雾滴密度与农药沉积效率呈上升趋势;在同一牵引速度下,随作业距离增加,雾滴粒径与密度增大,雾滴覆盖率、叶片沉积量及农药沉积效率则呈相反变化。冠层内外沉积量比值为0.400—0.682,以作业距离0 m、牵引速度2.48 km·h-1组合最高(0.682)。正交分析表明,影响叶片沉积量的主次因素顺序为牵引速度>牵引速度×作业距离交互作用>高度>作业距离;牵引速度对叶片沉积量具有极显著影响(P<0.01),作业距离与牵引速度的交互作用具有显著影响(P<0.10),高度影响不显著(P>0.25)。使叶片沉积量最大的最优组合为作业距离0 m、牵引速度2.48 km·h-1。对于地面沉积量,影响因素主次顺序为牵引速度>作业距离>方向>交互作用,使地面沉积量最小的最优组合为作业距离0 m、牵引速度5.98 km·h-1、北向。回归模型(R2=0.90)证实了作业距离与牵引速度之间存在拮抗效应,模型预测的最优参数组合(作业距离0 m、牵引速度2.48 km·h-1)与实测结果一致。【结论】作业距离与牵引速度对喷雾效果具有显著的拮抗效应,即作业距离对牵引速度效应具有负向调节作用,随作业距离增加,牵引速度对沉积量的影响敏感性下降。短距离低速组合有利于提高冠层内部沉积量和农药沉积效率;长距离高速组合虽可提升作业效率,但易导致冠层穿透不足和地面流失增加。因此,实际生产中应根据防治目标对作业参数进行协同优化。

关键词: 风送式喷雾机, 苹果园, 作业参数, 雾滴沉积, 交互作用

Abstract:

【Objective】This study aims to investigate the effects of operating distance and traction speed on droplet characteristics, deposition distribution, and pesticide deposition efficiency of an air-assisted sprayer in apple orchards, and to clarify the interaction mechanism between these two parameters, so as to provide a theoretical basis for precision spraying in orchards.【Method】A two-factor field experiment was conducted in a wide-row densely planted apple orchard using an SS-1000 self-propelled air-assisted sprayer. Three operating distances (0, 0.5, and 1.0 m) and three traction speeds (2.48, 4.10, and 5.98 km·h-1) were set, resulting in nine treatment combinations. The droplet size (volume median diameter, VMD), droplet density, and droplet coverage were measured using the water-sensitive paper method. Foliar deposition and ground deposition were determined using the Allura Red tracer method combined with spectrophotometry, and the pesticide deposition efficiency was calculated. Range analysis and analysis of variance were employed to evaluate the main effects and interactions of the factors.【Result】At the same operating distance, as traction speed increased, droplet size, droplet coverage, foliar deposition, and ground deposition exhibited a decreasing trend, while droplet density and pesticide deposition efficiency showed an increasing trend. At the same traction speed, as operating distance increased, droplet size and density increased, whereas droplet coverage, foliar deposition, and pesticide deposition efficiency showed opposite trends. The ratio of inner to outer canopy deposition ranged from 0.400 to 0.682, with the highest value (0.682) observed at the combination of 0 m operating distance and 2.48 km·h-1 traction speed. Orthogonal analysis revealed that the order of factors influencing foliar deposition was traction speed>interaction between traction speed and operating distance>height>operating distance. Traction speed had a highly significant effect on foliar deposition (P<0.01), the interaction between operating distance and traction speed showed a significant effect (P<0.10), while height had no significant effect (P>0.25). The optimal combination for maximizing foliar deposition was 0 m operating distance and 2.48 km·h-1 traction speed. For ground deposition, the order of influencing factors was traction speed>operating distance>direction>interaction, and the optimal combination for minimizing ground deposition was 0 m operating distance, 5.98 km·h-1 traction speed, and north direction. A regression model (R2=0.90) confirmed the antagonistic interaction between operating distance and traction speed, and the predicted optimal parameters (0 m, 2.48 km·h-1) were consistent with the measured results.【Conclusion】Operating distance and traction speed exhibit a significant antagonistic effect on spraying performance, meaning that operating distance negatively regulates the effect of traction speed. As the operating distance increases, the sensitivity of traction speed’s impact on deposition decreases. The combination of short distance and low speed is conducive to improving inner canopy deposition and pesticide deposition efficiency. The combination of long distance and high speed can enhance operational efficiency, but tends to result in insufficient canopy penetration and increased ground loss. Therefore, in practical production, operating parameters should be synergistically optimized according to the control objectives.

Key words: air-assisted sprayer, apple orchard, operating parameter, droplet deposition, interactive effect