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February 25, 2026Computers and Electronics in Agriculture0 citationsOpen Access

Air-assisted sprayer airflow interaction with traditional olive orchard canopies and its effect on spray distribution

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AVAlba Vigo-MoranchoMVMaría VidegainASA. Serreta

Key Points

  • The study aims to model airflow velocity behavior generated by air-assisted sprayers in traditional olive orchards based on sprayer configurations and canopy characteristics.
  • Characterized airflow inside olive canopies under different sprayer gearbox settings.
  • Utilized LiDAR-derived point clouds for canopy geometry and density classification.
  • Measured airflow velocity at multiple points within tree canopies using a vane probe anemometer.
  • Conducted manual defoliations to correlate impacts with leaf area density (LAD).
  • Evaluated spray performance using water-sensitive papers and tracer collectors at the same sampling points.
  • Characterization model explained 72% of observed variability in airflow velocity inside canopies.
  • Lower air velocities corresponded to reduced spray coverage and deposition.
  • Coverage and deposition were significantly better when air velocities exceeded 2 m s −1, aligned with optimal spray performance.

Abstract

• Airflow behavior inside traditional olive canopies was characterized under different sprayer gearbox settings. • LiDAR-derived point clouds of each tree provided accurate geometric data and allowed canopy density classification. • Application parameters strongly affected canopy air velocity attenuation, enabling accurate modeling of this variable. • Canopy areas associated with lower air velocity corresponded to lower spray coverage and deposition. Air-assisted sprayers currently incorporate mechanisms that allow modification of airflow outlet characteristics, which is a key factor in product distribution quality. However, limited information exists on how airflow interacts with complex tree canopies, particularly in traditional olive orchards. The aim of this study was to model the behavior of airflow velocity generated by a previously laboratory characterized air assisted sprayer in a traditional olive orchard, as a function of air flow configuration (fan gearbox) and operational and canopy structural parameters. Five olive trees were selected, and a three-dimensional grid of 64 measurement points (4 depths × 4 sections × 4 heights) was defined, where airflow velocity (m s −1 ) was recorded with a vane probe anemometer under two sprayer configurations. Canopy characterization was carried out using Light Detection and Ranging (LiDAR) measurements, from which both canopy volume (m 3 ) and density based on the number of impacts (NI) at each sampling location were determined. In addition, manual defoliations of 0.008 m 3 cubes were performed at 8 positions per canopy, allowing a correlation between impacts and leaf area density (LAD, m 2 m −3 ) to be established (R 2 = 0.61). Airflow within the canopy was characterized, and a model including sprayer gear setting, measurement depth, height, and categorized vegetation density (low or high density, LD or HD, respectively, based on the accumulated number of impacts across trees, NIa) explained 72% of the observed variability in air velocity inside the tree canopy. Spray performance was evaluated at the same sampling points using water-sensitive papers (WSP) and tracer collectors (manganese, Mn), allowing the effects of application parameters on coverage (%) and deposition (µg cm −2 ) to be quantified. These effects were largely consistent with those influencing air velocity, which was strongly correlated with both coverage and deposition. Notably, adequate coverage and deposition levels were predominantly associated with air velocities inside the canopy exceeding 2 m s −1 , providing valuable insight for optimizing sprayer adjustment and operating conditions.

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Cite This Study

Vigo-Morancho et al. (2026) studied this question.

synapsesocial.com/papers/699e91fdf5123be5ed04fedehttps://doi.org/10.1016/j.compag.2026.111587
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