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October 19, 2025Resources2 citationsOpen Access

Improving Resource Efficiency in Plant Protection by Enhancing Spray Penetration in Crop Canopies Using Air-Assisted Spraying

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SLSeweryn LipińskiPMPiotr MarkowskiZKZdzisław Kaliniewicz

Key Points

  • Air-assisted spraying significantly improved droplet deposition in the lower canopy of oilseed rape, enhancing resource efficiency.
  • In oilseed rape, top-surface spray coverage increased from 53.4% to 65.5% at 6 km∙h−1, indicating better penetration compared to conventional methods.
  • Wheat showed smaller gains from air-assisted spraying with coverage rising from 13.3% to 21.9% on lower surfaces at 7 km∙h−1.
  • Results suggest that improved spray penetration can reduce off-target losses and align with EU Farm to Fork objectives.

Abstract

Efficient pesticide application remains a critical resource-management challenge in modern agriculture, where limited spray penetration reduces treatment efficacy, wastes chemical inputs, and increases environmental losses. This study quantified the effect of air-assisted spraying (AAS) on droplet deposition in two contrasting field crops, oilseed rape and wheat. Field trials were conducted using a sprayer equipped with an adjustable airflow module, and spray coverage was measured with water-sensitive papers at multiple canopy heights and orientations. In oilseed rape, AAS improved deposition on front-facing and top surfaces in the lower canopy, for example, increasing top-surface coverage at 90 cm from 53.4% to 65.5% at 6 km∙h−1, indicating more uniform distribution and enhanced penetration. In wheat, which typically exhibits a more open canopy structure compared to oilseed rape, AAS effects were smaller and less consistent, with the greatest gain on front-facing lower surfaces (from 13.3% to 21.9% at 7 km∙h−1). Although drift was not measured in this experiment, previous studies using the same sprayer prototype demonstrated measurable reductions, supporting the environmental relevance of improved deposition. These results highlight the role of canopy architecture in determining AAS performance and underscore the technology’s potential to reduce pesticide inputs, minimize off-target losses, and improve the resource efficiency of crop protection in line with EU Farm to Fork objectives.

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Cite This Study

Lipiński et al. (2025) studied this question.

synapsesocial.com/papers/68f43efb854d1061a58ac02fhttps://doi.org/10.3390/resources14100165
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