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Aerial application

Aerial application is the practice of dispensing pesticides, fertilizers, seeds, and other agricultural materials from to treat crops, forests, and rangelands, enabling rapid coverage of large areas where ground-based equipment is impractical due to terrain, soil conditions, or timing constraints. Originating in 1921 with the first experimental dusting of lead arsenate over trees in , using a modified Curtiss JN-4 flown by U.S. Lt. John A. Macready, the technique evolved from dry chemical dispersal to liquid spraying, becoming a commercial industry by the amid post-World War I surplus availability. Today, it accounts for approximately 20% of U.S. crop protection applications, utilizing specialized like the or Thrush, helicopters, and increasingly unmanned drones, which enhance precision while reducing operator exposure risks compared to manual methods. Key benefits include timely that boosts yields and minimizes for , particularly in wet fields or during critical growth windows, though challenges persist from spray drift potentially affecting non-target areas, necessitating adherence to federal regulations under FAA Part 137 for safe operations. Controversies have centered on environmental and impacts, such as unintended deposition near communities, prompting ongoing refinements in technology and zones to mitigate off-site movement while preserving efficacy.

History

Origins and Early Innovations

The origins of in date to August 3, 1921, when U.S. Army Air Service Lieutenant John A. Macready piloted a modified Curtiss JN-4 from McCook Field in , to disperse lead arsenate dust over a 6-acre tree plantation in , targeting sphinx moth larvae. This experiment, prompted by Department of R. Nellie amid a wood shortage for fishing industry bobbins, involved McCook Field engineers like Etienne Dormoy who adapted the surplus World War I trainer by fitting a 175-pound dust hopper and a wind-driven distribution system. The flight successfully demonstrated aircraft potential for rapid, large-area chemical delivery, covering the infested grove in six minutes despite variable winds affecting dust dispersion. Early innovations in the 1920s leveraged post-war aircraft surplus, primarily open-cockpit biplanes such as the , which were retrofitted with simple hoppers and bellows or propeller-driven spreaders for dry pesticide dusts like lead arsenate or calcium arsenate. These adaptations prioritized low-cost conversion over precision, with pilots flying at altitudes of 10 to 50 feet to minimize drift, though efficacy varied due to uneven application and environmental factors. By 1922, commercial trials emerged, including applications on cotton fields near , against boll weevils, marking the transition from experimentation to practical and expanding aerial methods to row crops. Such efforts, often supported by state agricultural extensions and private operators, highlighted aerial application's speed advantage over ground methods, treating hundreds of acres per hour despite risks from low-level flight and chemical exposure.

Crop Dusting Pioneering

The first documented aerial crop dusting occurred on August 3, 1921, near , when U.S. Army Air Service Lieutenant John A. Macready piloted a modified Curtiss JN-4 Jenny from McCook Field in Dayton to disperse lead arsenate dust over approximately 5,000 trees infested with sphinx larvae. The trees, valued for their wood in making worm gears for fishing reels, belonged to farmer Harry Carver and were threatened by the caterpillars, prompting entomologist C. R. Nellie of the Department of Agriculture to propose aerial application as a solution after ground methods proved inefficient. McCook Field engineer Etienne Dormoy assisted in modifying the aircraft by installing a makeshift hopper and a rudimentary dusting using burlap tubes connected to the exhaust for propulsion. This experiment demonstrated the feasibility of aerial delivery, with Macready flying at low altitudes of about 35 feet to achieve uniform coverage, successfully controlling the without damaging the . The stemmed from the airplane's ability to cover large areas rapidly—approximately 80 acres in under four minutes—far surpassing manual labor rates, which highlighted aviation's potential for agricultural management amid growing crop losses from post-World War I. Initial challenges included imprecise distribution due to and the of lead , which required careful handling, but the trial validated the concept and spurred interest from entomologists and farmers. Following the 1921 demonstration, early adopters adapted surplus military biplanes like the JN-4 for sporadic agricultural use, though commercial viability emerged in 1924 when , in —later evolving into —conducted the first sustained operations using purpose-modified aircraft for in the southern U.S. The , tested in 1924 with pilot Harold Harris, featured a ventral hopper and powered disperser, marking the initial shift toward specialized equipment and establishing aerial application as a practical innovation driven by economic pressures from infestations. These pioneering efforts laid the groundwork for the industry, emphasizing low-level flight techniques and dust formulation refinements to minimize drift and maximize efficacy.

Expansion to Fertilizer and Topdressing

Following the success of aerial applications pioneered in the United States in , the technique expanded to distribution, particularly topdressing with dry materials like on pastures and crops. This adaptation addressed logistical challenges in applying nutrients to steep or remote terrains inaccessible to ground equipment, leveraging the same principles of airborne dispersion for broader agricultural efficiency. In , the idea originated with farmer John Lambert's 1926 proposal to use for hill-country fertilization. Early experiments included Alan Prichard's 1941 aerial sowing of lupin using a Miles-Whitney Straight . Systematic trials commenced in 1948 at RNZAF Ōhakea, where a modified Grumman Avenger released from altitudes of 21 to 180 meters at speeds around 200 km/h, yielding encouraging results on spread uniformity measured via ground trays. Doug Campbell, a advisor, played a key role in advocating and advancing these efforts. Commercial began in May 1949, when John Brazier, piloting a ZK-ASO for Airwork (NZ) Ltd, applied at 56 kilograms per on farmland, marking the first such operation in . This breakthrough rapidly scaled, transforming hill-country pastoral farming by enabling annual applications over millions of hectares, with use surging from 200,000 tons in 1950 to over 2 million tons by 1960. and elsewhere, aerial application followed in the 1950s amid postwar chemical agriculture growth, though it remained secondary to use until specialized dry-spread systems developed.

Development of Purpose-Built Aircraft

The transition from modified surplus military aircraft to purpose-built designs for aerial application occurred in the mid-1920s, driven by the limitations of wartime biplanes like the Curtiss JN-4 Jenny, which lacked integrated chemical hoppers, corrosion-resistant structures, and optimized low-altitude stability. The Huff-Daland Duster, developed by the Huff-Daland Airplane Company, marked the first aircraft engineered specifically for crop dusting, featuring a ventral hopper for powdered insecticides and a strengthened fuselage to withstand chemical exposure and rough-field operations. Its prototype achieved a test flight on July 28, 1924, piloted by Harold Harris, enabling the inaugural commercial dusting operations by Huff-Daland Dusters, Inc., in 1925, which treated over 4,000 acres of cotton in the southern United States that year. Economic constraints during the and reliance on inexpensive surplus biplanes, such as the Boeing Stearman and Fleet Finch, delayed widespread adoption of purpose-built models until the post-war agricultural boom of the , when rising use and farm mechanization demanded more efficient, durable platforms capable of carrying larger liquid loads at low speeds. Leland Snow pioneered modern designs with the S-1 in , a single-engine tested in that emphasized a low center of gravity for stability during low passes and a 100-gallon hopper, influencing subsequent rugged, hopper-forward configurations. By the late 1950s, major manufacturers introduced production models tailored for the role: the G-164 Ag-Cat biplane, with its first flight on May 27, 1957, offered a 400-gallon capacity and power for heavy payloads, becoming the first such design from a large firm and producing over 2,400 units; the , certified in 1959, featured a tricycle gear for better rough-field performance and a 150-horsepower , with more than 7,000 built by for its simplicity and low operating costs. Snow's S-2 evolved into the series through licensing to Rockwell and Ayres Corporation, introducing turbine variants in the 1970s for enhanced reliability in humid, corrosive environments, while these advancements reduced pilot exposure risks and improved dispersion uniformity over converted .

Rise of Unmanned Systems

The introduction of unmanned aerial systems (UAS) for aerial application originated in Japan during the late 20th century, driven by needs for precise pesticide distribution in challenging terrains. Yamaha Motor Company developed the R-50 prototype in the late 1980s, demonstrating crop dusting capabilities, followed by the RMAX unmanned helicopter released in 1997, which featured autonomous flight for industrial tasks including agricultural spraying. These early systems addressed labor shortages and enabled operations in areas inaccessible to manned aircraft, logging extensive flight hours in Asia by the early 2000s. Global adoption accelerated in the 2010s with regulatory advancements and technological improvements in multi-rotor drones. In the United States, the Federal Aviation Administration issued the first commercial drone permits in 2006, but spraying-specific approvals came later; Yamaha received Part 137 certification for the RMAX in December 2015, enabling its first U.S. commercial agricultural flight in 2016 for vineyard applications in California. Concurrently, DJI launched the Agras MG-1 in November 2015, an octocopter capable of carrying over 10 kilograms of liquid and covering 7 to 10 acres per hour, which popularized affordable spraying drones in diverse markets. Initially focused on monitoring, UAS shifted to direct application as battery life, payload capacity, and GPS precision improved, offering advantages like reduced pilot risk and targeted delivery in small or obstructed fields. By the 2020s, UAS proliferation in aerial application surged, particularly in , where deployed an estimated 250,000 agricultural drones by 2025, leading global usage for tasks like distribution and . reported approximately 400,000 agricultural drones in operation worldwide by the end of 2024, reflecting a 90% increase from 2020, fueled by market growth from $6.10 billion in 2024 to a projected $23.78 billion by 2032. In regions like the U.S. and , adoption lagged due to stringent regulations but gained traction for precision benefits, such as 20-30% reductions in chemical usage through variable-rate application, though challenges like limited and weather sensitivity persist. This shift complements manned operations, targeting niche applications while manned handle large-scale work.

Technical Principles

Fluid Dynamics and Dispersion

In aerial application, primarily involves the of liquid payloads—such as pesticides or fertilizers—into droplets via hydraulic nozzles mounted on the . This relies on the of pressurized fluid into , leading to and governed by Weber and Ohnesorge numbers, which quantify inertial, viscous, and forces. Primary produces droplets typically ranging from 50 to 500 micrometers in volume median diameter (VMD), with finer sprays (under 150 μm VMD) prone to greater and drift due to higher surface-area-to-volume ratios. Secondary occurs as droplets interact with high-speed airstreams from propellers or wings, fragmenting smaller particles through aerodynamic , as simulated in (CFD) models validated against data. Nozzle design, fluid (typically 1-10 cP for aqueous formulations), and application (20-60 psi) critically determine initial droplet spectra, with empirical measurements via confirming that coarser nozzles yield VMDs exceeding 300 μm to minimize off-target movement. Dispersion of these droplets post-atomization is dominated by from wake vortices, , and ambient , resulting in non-uniform swath patterns that can span 10-20 meters wide at typical speeds of 100-160 knots. In fixed-wing applications, trailing vortices induce downward velocities up to 5-10 m/s near the flight path, entraining droplets toward the canopy, while crosswinds exceeding 5 m/s amplify long-range drift via -diffusion processes modeled by Gaussian plume equations adjusted for particle . For or unmanned aerial s (UAVs), from rotors generates concentrated deposition zones with radial spread influenced by rotor thrust (up to 20-30 m/s vertical velocity), but this can lead to bimodal deposition profiles—high under the and tapered edges—exacerbated by droplet , where particles with relaxation times over 1 second follow less faithfully. Atmospheric further modulates dispersion: stable conditions (low ) promote drift by limiting vertical mixing, whereas convective layers enhance dilution, as evidenced by field trials showing 20-50% deposition variance tied to Pasquill stability classes A-F. reduces effective droplet size by 10-30% during flight, modeled via wet-bulb equilibrium, prioritizing adjuvants that maintain integrity in humidities below 70%. Predictive models integrate these dynamics for optimizing application efficacy and minimizing environmental impact. Tools like AGDISP and USDA-ARS nozzle models simulate atomization and drift by coupling Lagrangian particle tracking with CFD-resolved wakes, predicting ground deposition with accuracies within 15-25% of field measurements for wind speeds under 10 m/s. Sensitivity analyses reveal droplet size as the dominant factor, with halving VMD increasing drift by factors of 2-5 at distances beyond 50 meters downwind, underscoring the trade-off between coverage (favoring finer sprays for canopy penetration) and containment. Empirical validation from USDA studies emphasizes release height (5-15 meters above crop) and boom configuration to mitigate vortex-induced asymmetry, achieving uniformities of 80-90% in controlled trials. These principles, derived from first-principles fluid mechanics rather than unverified assumptions, guide refinements like air-assist nozzles to coarsen spectra without sacrificing volume rates of 1-5 gallons per acre.

Application Modalities

Aerial application modalities primarily consist of liquid spraying, dry material dispersal, and , each tailored to specific types and environmental conditions for optimal deposition and minimal off-target movement. Liquid spraying dominates and liquid fertilizer applications, accounting for the majority of operations due to its versatility in controlling droplet spectra from coarse (for reduced drift) to fine (for canopy penetration). Dry dispersal suits granular fertilizers and certain pesticides, while targets broadcast distribution of seeds over expansive or inaccessible . Selection depends on factors such as type, , weather, and regulatory drift mitigation requirements, with liquid methods often preferred for precision in . Liquid spraying employs two principal atomization techniques: hydraulic nozzles and . Hydraulic nozzles force liquid under high pressure (typically 30-60 ) through orifices to droplets, producing patterns like flat-fan for uniform swath coverage or hollow-cone for targeted ; droplet volumes median (VMD) range from 200-400 microns in coarse settings to minimize drift, as finer droplets below 150 microns increase and off-target transport. , such as Micronair systems, deliver liquid to a high-speed spinning disk (up to 10,000 rpm), where generates uniform fine droplets (VMD 50-150 microns) ideal for ultra-low volume (ULV) applications under 1 per , enhancing efficacy in humid conditions but requiring precise speed-height to avoid excessive fines. Dry material dispersal involves hopper-fed systems with rotating or air-assisted deflectors to broadcast granules (typically 1-5 mm ) at rates of 100-500 pounds per , commonly for fertilizers in topdressing operations on pastures or fields; this method avoids liquid-related corrosion and suits windy conditions better than sprays, though uniformity depends on and aircraft speed (80-120 mph). Seeding modalities use similar dry dispersal hardware but with fluted rollers or vibratory feeders to meter seeds (e.g., 5-20 pounds per for ), enabling rapid coverage of 1,000+ acres daily in or ; success rates exceed 70% in favorable winds under 10 mph, outperforming ground methods in wet soils.

Equipment and Technology

Manned Aircraft Configurations

Manned aircraft configurations for aerial application primarily encompass fixed-wing airplanes and helicopters, with fixed-wing designs dominating large-scale operations due to their higher speeds and greater payload capacities. Fixed-wing aircraft, often low-wing monoplanes, feature a traditional layout with the engine forward, followed by the hopper and then the cockpit, enabling gravity-fed distribution systems for chemicals or fertilizers. These aircraft are engineered for low-altitude, high-maneuverability flights, incorporating rugged construction to withstand rough-field operations and potential impacts from foreign objects. Modern examples include turboprop-powered models like the Air Tractor AT-802A, the largest single-engine agricultural aircraft, capable of covering up to 2,000 acres per day, and the AT-502XP with a 500-gallon hopper suited for demanding environmental conditions. Helicopters, or rotary-wing configurations, offer advantages in precision applications, hovering capability, and access to uneven terrain where fixed-wing operations are impractical. They typically mount spray booms on skids or under the fuselage, using centrifugal pumps for liquid disbursement and achieving superior canopy penetration compared to fixed-wing swath spraying. Common models include the Bell 206 JetRanger for its agility in smaller fields and the Robinson R44 equipped with automated spray systems for variable-rate application. Studies indicate helicopters excel in forestry and specialty crop spraying but cover less area per hour than fixed-wing aircraft due to lower forward speeds. Both configurations prioritize simplicity and durability, with ongoing adaptations for GPS-guided precision to minimize drift and enhance efficacy.

Unmanned Aerial Vehicles

Unmanned aerial vehicles (UAVs), commonly known as drones, have been employed in aerial application since the early 1990s, primarily for dispensing pesticides and fertilizers in agriculture. Yamaha Motor Corporation introduced the RMAX unmanned helicopter in Japan, which achieved commercial operation for crop dusting in rice paddies by 1991, with over 2,500 units deployed for such tasks by the early 2000s. This helicopter-style UAV features a maximum payload capacity of 35 kg, enabling it to carry and apply liquids at rates suitable for large-scale fields while maintaining autonomous flight paths within 20-30 cm accuracy using GPS guidance. Multirotor drones, such as quadcopters, emerged in the as lighter, more affordable alternatives, initially for crop monitoring before expanding to spraying applications. These battery-powered systems typically support payloads of 10-50 liters and flight times of 10-30 minutes per battery, allowing precise application over uneven or small plots inaccessible to manned aircraft. In regions like , drone spraying has scaled rapidly, with applications focusing on pesticides (most common), followed by fertilizers and seeding, driven by labor shortages and efficiency gains in . Regulatory frameworks govern UAV use in aerial application to ensure safety and efficacy. In the United States, the (FAA) certifies drones under 14 CFR Part 137 for dispensing agricultural substances, requiring waivers for operations beyond visual , swarming, or nighttime use, with recent approvals in expanding these capabilities for heavier payloads over 25 kg. The Environmental Protection Agency permits drone spraying of pesticides labeled for aerial use, emphasizing drift minimization through nozzle and flight parameter controls. Empirical assessments indicate drones reduce operator risk compared to manned crop dusting, with potential for 20-30% chemical savings via targeted delivery, though challenges include limited payload capacity and battery life necessitating frequent recharges.

Payload Delivery Mechanisms

Payload delivery in aerial application encompasses systems designed to dispense liquids, such as pesticides and fertilizers, or , including granular fertilizers and , with to optimize coverage while minimizing drift and waste. payloads are typically atomized into droplets via pressurized spray booms equipped with , where droplet —often measured as volume median diameter (VMD)—is controlled by factors like nozzle (e.g., 0.005 inches for fine sprays), operating (2-5 gallons per capacity), and aircraft speed to achieve spectra from very fine (under 150 microns) for to coarse (over 400 microns) for drift reduction. Flat fan on booms, spanning 40-60 feet on manned , produce tapered sheets of spray that disperse under , with real-time monitoring systems emerging to adjust for in-flight variations in or wind. For granular payloads, delivery relies on mechanical spreaders that meter and propel particles outward, predominantly centrifugal disc systems where a rotating (speeds up to several thousand RPM) flings granules via , achieving swath widths of 5-10 meters depending on , particle size (3-5 mm typical for fertilizers), and release height. Baffle adjustments and vibratory feeders control flow rates, ensuring uniform distribution patterns validated in tests showing optimal efficiency at 2-4 meter altitudes for UAVs, with deposition models predicting overlap to avoid gaps. These mechanisms, adapted from ground equipment, integrate hoppers holding 50-200 kg payloads on larger platforms, with empirical studies confirming reduced variability in spread compared to manual methods through GPS-synchronized release. Hybrid systems for mixed payloads or employ interchangeable modules, such as pneumatic dispensers for fine seeds or electrostatic enhancements for , though adoption remains limited due to regulatory scrutiny on data; for instance, centrifugal spreaders outperform pneumatic in granule control under turbulent airflow, per wind tunnel simulations. of these mechanisms emphasizes clog-resistant designs and to match application rates (e.g., 100-500 kg/ for fertilizers), with peer-reviewed assessments highlighting causal links between improper droplet/particle sizing and 20-30% losses from uneven coverage or off-target deposition.

Primary Applications

Pest and Weed Control

![Crop dusting near Calipatria in the Imperial Valley](.assets/CROP_DUSTING_NEAR_CALIPATRIA_IN_THE_IMPERIAL_VALLEY._(FROM_THE_SITES_EXHIBITION.FOR_OTHER_IMAGES_IN_THIS_ASSIGNMENT...-NARA-_553873.jpg) Aerial application serves as a primary method for delivering insecticides and fungicides to suppress pests and fungal diseases in crops, enabling rapid coverage of extensive fields during outbreaks. , manned aerial applicators treat approximately 127 million acres of cropland annually, accounting for about 28% of commercial cropland and roughly 20% of all crop protection products applied. This approach is particularly effective for managing leaf-feeding in crops like , where fixed-wing and (UAV) applications of achieve equivalent to ground methods. Empirical studies demonstrate that aerial spraying can reduce populations sufficiently to prevent significant losses, with global insect-induced reductions estimated at 5% in regions with widespread use like . For instance, UAV-based systems have proven effective against in fields, providing timely intervention in large-scale infestations through low-volume spraying that maintains deposition efficacy. Adjuvants incorporated into aerial sprays further enhance control of and in by improving droplet adhesion and penetration, extending the duration of pest suppression. Weed control via aerial herbicide application targets broadleaf and grassy weeds in row crops and orchards, often in terrains unsuitable for ground equipment. Herbicides such as and 2,4-D are deployed aerially, with deposition influenced by nozzle configuration and wind conditions to minimize off-target drift while ensuring coverage. Effectiveness data indicate that aerial methods can achieve comparable weed suppression to ground applications when optimized, though dust interference may variably impact herbicide performance, sometimes enhancing uptake for certain actives like . In practice, this modality supports integrated weed management, reducing reliance on mechanical cultivation and preserving in vulnerable fields.

Nutrient and Fertilizer Distribution

![Aerial fertilization using agricultural aircraft in Germany][float-right] Aerial distribution of nutrients and fertilizers utilizes to apply liquid or granular formulations containing elements such as , , and directly to canopies or surfaces. This is employed when ground-based equipment is impractical due to fields, steep , or large-scale operations requiring rapid coverage. fertilizers, often urea-ammonium solutions, are dispersed via hydraulic nozzles on boom systems, achieving swath widths of 15-20 meters per pass at application rates up to 100 pounds per . Granular fertilizers are spread using centrifugal disc mechanisms, particularly adapted for unmanned aerial vehicles (UAVs), where factors like disc speed and baffle adjustments influence particle trajectory and uniformity, with optimal settings yielding deposition patterns within 10-15% variance across targeted areas. Efficacy depends on meteorological conditions, with wind speeds below 10 km/h minimizing drift, and application timing aligned to crop growth stages, such as vegetative phases for nitrogen uptake. In and certain row crops, aerial methods have demonstrated reduced losses compared to surface , as evidenced by trials on fields showing up to 20% lower runoff. Empirical assessments link aerial fertilization to yield enhancements through timely delivery, avoiding delays that can reduce nitrogen efficiency by 20-30% in ground applications during peak demand periods. For instance, integration with allows variable-rate dispensing based on soil maps, potentially increasing crop output by 5-10% over uniform methods while conserving resources. However, uniform deposition remains challenging in variable winds, necessitating GPS-guided systems for accuracy within 2-5 meters. Overall, this approach supports sustainable intensification by maximizing per-acre productivity, thereby limiting farmland expansion needs.

Seeding and Suppression Techniques

Aerial seeding techniques utilize fixed-wing aircraft, helicopters, or unmanned aerial vehicles to broadcast seeds over extensive areas, bypassing ground-based limitations such as wet soils or tall standing crops. This method is widely applied for establishing cover crops like cereal rye or clover into cash crops such as soybeans or corn prior to harvest, enabling rapid coverage at rates typically ranging from 20 to 50 pounds per acre depending on seed type and field conditions. In 2021, aerial seeding covered thousands of acres in regions like the northeastern U.S. to reduce post-harvest erosion and nutrient runoff, with application costs averaging $15 to $20 per acre. Seed coating with materials like lime or polymers enhances dispersion uniformity and germination rates during aerial broadcast, as demonstrated in forestry reseeding trials where coated seeds improved mechanical planting efficiency by up to 30%. Suppression techniques in aerial application focus on deploying or to curtail unwanted , pathogens, or competing growth, often preparing sites for subsequent . In and management, nonselective such as are aerially applied to clear-cuts at volumes of 5 to 10 per via , achieving near-total suppression to enable without mechanical disturbance. For disease management, aerial sprays target suppression of head blight in and , with applications of 10 to 15 ounces per during stage proving effective for large-acreage treatment when ground access is delayed. These techniques prioritize low-altitude passes (under 50 feet) and droplet sizes optimized for canopy penetration, minimizing drift while maximizing on-target deposition, though efficacy varies with wind speeds below 10 mph and uniform spray volumes of at least 1 per . In cover crop systems, aerial itself contributes to suppression by establishing competitive biomass, reducing reliance by 20-50% in subsequent seasons through and physical shading.

Efficacy and Economic Impact

Yield Enhancement Data

Empirical studies indicate that aerial application of fungicides and other crop protection products can enhance yields by enabling timely intervention that ground methods often cannot match due to field access limitations. A collaborative study by and the University of in 2008 found that aerial fungicide applications on corn at the VT growth stage resulted in an average yield increase of 18.6 bushels per acre compared to untreated controls, attributing the gain to improved disease control in the upper canopy where droplet penetration is superior. Similarly, Dr. Scott Bretthauer of the University of reported comparable results in corn trials, with aerial applications protecting ear development and yielding 18.6 bushels per acre more than non-aerial benchmarks, emphasizing the method's efficacy in distributing protectants to hard-to-reach plant parts. Comparative analyses further highlight aerial advantages over ground application. A study commissioned by a crop protection product manufacturer demonstrated that aerial applications on corn increased yields by 8 percent relative to ground methods, linked to reduced wheel track damage and more uniform coverage. Ground equipment can compact soil and damage , with research from 2007 estimating 1.5 to 5 percent yield losses in soybeans from such mechanical injury, losses avoided by aerial methods. For soybeans, late-season (R2 stage) aerial applications yielded 10 to 15 bushels per acre above a 70-bushel baseline, per 2015 AgriNews data, by addressing nutrient deficiencies without ground disruption. Broader assessments quantify prevented losses across crops. Research by Senarath Dharmasena at in 2020, drawing from the 2019 National Agricultural Aviation Association industry survey, estimated that shifting from aerial to ground application would cause a 25 percent yield reduction in key crops, equating to annual U.S. losses of 1.69 billion bushels of corn, 295 million bushels of soybeans, 199 million bushels of , 548 million pounds of , and 3.33 billion pounds of . These figures underscore aerial application's role in sustaining productivity on existing acreage, equivalent to protecting 27.4 million acres from conversion. While such data derive partly from industry surveys, they align with university-led trials showing consistent benefits under conditions of rapid pest pressure or terrain challenges.

Operational Efficiency Metrics

Aerial application achieves high operational efficiency through rapid coverage rates that surpass ground-based methods, allowing treatment during critical temporal windows such as pest outbreaks or pre-harvest periods. Manned typically treat 150 to 300 acres per hour, enabling up to 1,800 acres in a standard 12-hour operational day, which is approximately four times the of ground rigs covering 450 acres in the same timeframe. Unmanned aerial vehicles (UAVs) exhibit lower but scalable rates, with models like the Agras T40 achieving 52 acres per hour under optimal conditions for row crops, while averages across drone operations range from 20 to 50 acres per hour depending on , flight speed, and . Cost metrics further highlight efficiency, with manned aerial application averaging $10 to $15 per , often justified by reduced compaction and labor needs compared to application at $5 to $8 per for similar tasks like fungicide delivery. Drone-based services range from $7.39 per for custom operations to $12.27 per for owner-operated units, offering up to 50% savings over manned aerial in some scenarios due to lower and demands, though initial for drones exceeds $100,000 per unit.
MetricManned AircraftUAVsGround Rigs
Acres per Hour150–30020–5230–50
Daily Coverage (12 hours)Up to 1,800240–600 (scalable with fleet)~450
Application Cost per Acre$10–15$7–12$5–8
Resource utilization metrics emphasize aerial methods' advantages in labor and timeliness; a single pilot or operator can manage applications that would require multiple crews, reducing human exposure and enabling responses within hours of need, as evidenced by surveys showing aerial operations minimize losses from delays. varies by type, with modern turbine-powered dusters consuming 20–40 gallons per hour while covering hundreds of acres, outperforming equipment's higher aggregate use over extended field traversals. Overall, these metrics position aerial application as optimal for large-scale, time-sensitive operations, though UAV adoption is accelerating for smaller fields where precision mapping enhances uniformity and reduces overlap waste by 10–20%.

Integration with Precision Agriculture

Aerial application integrates with precision agriculture by leveraging GPS and inertial navigation systems (INS) to enable centimeter-level accuracy in targeting variable field conditions, allowing operators to follow prescription maps generated from soil tests, satellite imagery, or on-ground sensors. This site-specific approach contrasts with uniform broadcasting, as GPS-guided swath control minimizes overlaps and gaps, with real-time kinematic (RTK) corrections achieving positioning errors under 2 cm in optimal conditions. Variable-rate technology (VRT) further enhances integration by modulating spray rates dynamically—via pulse-width modulation nozzles or flow controllers—based on geospatial data layers, reducing input volumes where crop needs are lower. Unmanned aerial vehicles (UAVs) exemplify this synergy, combining for crop health assessment with automated spraying algorithms that adjust for detected variability, such as weed patches or nutrient deficiencies. Empirical studies demonstrate VRT-equipped UAVs reduce by 30-50% compared to conventional methods, while cutting drift by up to 60% through targeted deposition. For instance, spiral flight patterns in operations have increased spraying efficiency by 85% and decreased by 15%, as validated in controlled field trials. Integration often involves software platforms that fuse aerial data with ground-based analytics, enabling predictive modeling for application timing and rates grounded in causal factors like and . Manned aircraft have adopted similar technologies, with automated boom systems and weather-responsive nozzles allowing adaptive responses to microclimatic variations during flights. USDA confirms that such enhancements in aerial systems improve on-target deposition by optimizing droplet size and , directly linking reduced off-target losses to measurable gains in row crops like and corn. Overall, these integrations prioritize causal mechanisms—such as precise and deposition physics—over blanket assumptions of uniformity, yielding verifiable reductions in resource use without compromising efficacy.

Risks and Empirical Assessments

Environmental Exposure Realities

Environmental exposure from aerial arises mainly through spray drift—fine droplets and particles displaced by wind during release—and post-application volatilization from treated surfaces. Drift deposits residues on non-target , , and water bodies, while airborne transport enables wider dissemination, with volatilized compounds potentially traveling long distances before redeposition. During spraying, empirical data indicate that 30–50% of applied pesticides enter the air via drift and immediate , contributing to elevated atmospheric concentrations. Field measurements from aerial applications in Washington state orchards recorded air concentrations of azinphosmethyl ranging from 0.174 µg/m³ to 0.479 µg/m³ during active spraying periods (5:30 a.m.–4:30 p.m.), compared to pre-spray background levels of 0.0475 µg/m³; post-spray concentrations persisted at 0.121 µg/m³ overnight, highlighting secondary drift from volatilization. These levels exceeded model predictions (e.g., Fugitive Dust Model with Volatilization Emission Factor), which underestimated active-period concentrations by about 77% and overpredicted next-day values by 40%, underscoring the role of time-varying emissions in real-world exposure. Similar ng/m³-range concentrations have been documented for other pesticides like chlorpyrifos (up to 12,900 ng/m³) and glyphosate (503–517 ng/m³) near application sites. Downwind deposition studies reveal rapid attenuation but notable off-target reach for aerial methods. In a 2020 field trial using florpyrauxifen-benzyl , aerial application produced 5.0- to 8.6-fold higher drift than ground boom spraying, with measurable residues at 61 m downwind causing >70% injury to adjacent soybeans; ground methods showed near-zero deposition by that distance and only ~25% injury. Aerial drift equated to ~0.5% of the applied rate at 150 m and up to 1% at 500 m in comparable scenarios, diminishing exponentially due to factors like droplet size and . Such depositions can contaminate adjacent habitats, exposing non-target plants, systems via runoff, and through direct contact or ingestion, though concentrations typically fall below thresholds beyond buffer zones of 20–60 m. Post-deposition, volatilization from foliage exceeds emissions by up to threefold, prolonging airborne and facilitating redeposition in or dry fallout. Empirical assessments confirm higher drift potential from aerial release heights (10–15 m) and finer droplets compared to applications, amplifying risks in windy conditions (e.g., 8 mph crosswinds yielding near-100% to sensitive crops at 200 ft downwind). However, deposition to non-target areas remains a small of total applied volume under regulated practices, with drift rates approaching zero beyond adequate s or windbreaks. These realities inform requirements and technology adoption to minimize ecological residues.

Human Health and Safety Evaluations

Aerial applicators, including pilots and ground crew, face primary pesticide exposure risks during chemical mixing, loading, and equipment maintenance, with lesser inhalation or dermal contact during flight operations due to cockpit sealing and aircraft speed. Acute effects from organophosphate or carbamate pesticides, common in aerial use, manifest as nervous system inhibition, including nausea, blurred vision, and respiratory distress, treatable via atropine and decontamination if addressed promptly. Chronic occupational exposure in agricultural aviation correlates with elevated respiratory conditions, such as asthma and chronic bronchitis, based on cohort studies of pesticide handlers. Empirical data on cancer incidence among aerial applicators remain limited but indicate associations with skin melanoma, potentially from cumulative UV exposure combined with residues, though causation requires further disaggregation from aviation factors like solar radiation. applicators broadly, including aerial operators, show odds ratios of 1.2–1.5 for prostate and in meta-analyses, attributed to persistent organochlorines, yet aerial-specific studies report lower systemic absorption compared to ground-based methods due to brief flight exposures. risks mirror pilots' during loading, mitigated by (PPE) like respirators and impermeable suits, with evaluations emphasizing such as enclosed mixing systems to reduce dermal uptake by up to 90%. Safety protocols, including FAA 137-1, mandate pilot certification, pre-flight hazard assessments, and buffer zones to minimize bystander exposure, with incident data from the National Agricultural Aviation Association showing crash-related injuries as the dominant risk over chemical toxicity. Transition to unmanned drones for application has demonstrated 50–80% reductions in operator exposure during spraying, as field trials measure near-zero doses absent cockpit proximity, though manual handling phases persist. Overall, regulated use with PPE and adherence to label rates yields exposure levels below EPA chronic reference doses for most operators, underscoring causal primacy of procedural lapses over inherent aerial methodology risks.

Drift and Efficacy Trade-offs

In aerial applications, spray drift constitutes the off-target displacement of droplets, predominantly affecting those smaller than 150 micrometers, which remain airborne longer due to reduced gravitational settling rates—exemplified by 20 μm droplets decelerating at 0.04 ft/sec versus 200 μm at 2.4 ft/sec. Factors exacerbating drift include application heights exceeding above canopy, wind speeds over 10 , and temperature inversions, with empirical data indicating a 2.5-fold drift increase when boom height rises from 8 to 22 feet downwind at 25 feet. Droplet size spectra, standardized by ASABE S572.3 (revised July 2018), underpin trade-offs between drift minimization and efficacy, as finer distributions enhance foliar wetting and penetration for systemic pesticides but elevate windborne losses, whereas coarser ones promote rapid deposition to curb drift yet risk uneven coverage and reduced retention on target surfaces, particularly for herbicides requiring intimate droplet-target .
ASABE CategoryVMD Range (μm)Relative Drift PotentialEfficacy Considerations
Very Fine<150Very HighOptimal for fine coverage in low-wind systemic applications but prone to 73-88% off-target losses in field tests
Fine150-250HighBalances for many labels but drifts up to 500 feet in 20 mph models
Medium250-350ModeratePreferred for in (e.g., Liberty 280 SL), yielding uniform deposition without excessive drift
Coarse350-450LowReduces drift via faster settling but may lower unless volumes increase to 30 gallons/ for 99% coverage
Mitigation relies on nozzles like hydraulic flat-fans (e.g., 4015 series at 40 yielding ~350 μm VMD) or , combined with adjuvants such as oil concentrates that enlarge droplets and narrow spectra, though these interventions can widen variability and necessitate higher carrier volumes to preserve , as coarser sprays alone achieve only 53% coverage at 10 gallons/. Field evaluations confirm these dynamics; USDA trials from showed droplet enlargement via adjuvants or reduced pressure decreased efficacy, partially offset by elevated spray rates, while UAV applications producing 112-179 μm VMD droplets delivered 10-60 droplets/cm² coverage with drift under 14% beyond 10 meters—contrasting manned fixed-wing setups where medium-coarse optima (300-400 μm) minimize modeled long-range deposition at the cost of potential under-wetting in dense canopies. labels thus specify spectra (e.g., medium for ) to navigate these constraints, ensuring causal links between droplet physics and biological outcomes like weed mortality rates.

Regulatory Framework

National and International Standards

In the United States, the (FAA) regulates aerial agricultural operations under 14 CFR Part 137, which establishes certification requirements for agricultural aircraft operators, including the need for an operator certificate, pilot qualifications, and operational rules such as maintaining safe distances from people and structures during dispensing. This part applies to both manned aircraft and unmanned aircraft systems (UAS) used for dispensing substances like pesticides, with recent expansions allowing certified drones to conduct such operations under specific waivers or approvals as of 2023. Complementing FAA oversight, the (EPA) enforces pesticide-specific standards under the Federal Insecticide, Fungicide, and Rodenticide Act (FIFRA), requiring applicators to follow product labels for aerial use, including buffer zones and drift minimization techniques outlined in the National Aerial Applicator's Manual. Internationally, the (FAO) of the provides guidelines on good practices for aerial pesticide application, emphasizing equipment calibration, meteorological assessments, and record-keeping to reduce off-target drift, though these are non-binding recommendations rather than enforceable standards. The (ISO) has developed technical standards for agricultural spraying equipment, such as ISO 23117-1:2023, which specifies design and performance verification for unmanned aerial sprayers when combined with ISO 16119-1, and ISO 23117-2:2025 for field measurements of spray deposition patterns. In the , Directive 2009/128/EC on the sustainable use of pesticides generally prohibits aerial spraying of plant protection products, permitting it only under strict exemptions for forestry, emergencies, or research, with member states required to designate authorities for risk assessments and approve pesticides specifically for such use. This restrictive framework, transposed into national laws like France's 2011 ban, reflects heightened environmental concerns but has prompted discussions on revisions to accommodate low-risk applications as of 2025. The (ICAO) does not prescribe dedicated standards for agricultural aviation, deferring instead to national authorities for compliance with general Annex 6 operational rules on safety and crew licensing, which indirectly influence low-level agricultural flights through and management. National variations persist globally; for instance, while the U.S. emphasizes operational certification and efficacy, approaches prioritize prohibition with exceptions to mitigate ecological risks, highlighting tensions between productivity and precaution in regulatory design.

Certification and Operational Guidelines

In the United States, certification for aerial application operations is governed by (FAA) regulations under 14 CFR Part 137, which establishes requirements for operators. Operators must obtain an Agricultural Aircraft Operator Certificate (AAOC) by submitting FAA Form 8710-3, demonstrating compliance with certification criteria including aircraft airworthiness, pilot qualifications, and operational manuals. The applicant or designated chief supervisor must hold a current U.S. commercial or airline transport pilot certificate with appropriate ratings for the aircraft used, and pass knowledge tests on topics such as performance, safe application procedures, and dispensing systems. Skill tests evaluate proficiency in low-altitude maneuvers, dispersion patterns, and emergency procedures specific to agricultural flights. Pesticide-related certification complements FAA rules, requiring pilots to hold state or EPA-approved applicator credentials for handling restricted-use products, as outlined in the Federal Insecticide, Fungicide, and Rodenticide Act (FIFRA). The EPA's National Aerial Applicator's Manual mandates adherence to product labels, including droplet size specifications, application rates, and wind restrictions to minimize off-target drift, with pilots verifying site conditions pre-flight. Industry standards from the National Agricultural Aviation Association (NAAA) recommend additional training in the Agricultural Airman Guidelines, covering , equipment calibration, and coordination with ground crews. Operational guidelines under Part 137 prioritize in non-congested areas, permitting flights below 500 feet above ground level and closer than 500 feet to persons or structures with landowner approval, provided maximum to surface property is maintained. Procedures include pre-application site inspections for obstacles, evaluations limiting operations to under 10-15 mph depending on droplet , and swath width calibrations to ensure uniform coverage without overlap waste. Ferrying empty to fields requires visual flight rules (VFR) compliance, while loaded dispensing prohibits flight over congested areas unless waived. Post-application decontamination and record-keeping of flight logs, chemical mixes, and acres treated are required for traceability and regulatory audits. Internationally, standards vary; for instance, the (EASA) aligns with ICAO Annex 8 for aircraft certification but delegates operational rules to member states, often mirroring U.S. emphasis on pilot licensing and environmental safeguards. FAO/WHO guidelines stress global best practices like GPS-guided precision to reduce chemical overuse, though enforcement relies on national authorities.

Evolving Drone-Specific Rules

In the United States, drone operations for agricultural spraying fall under (FAA) regulations, initially governed by 14 CFR Part 107 for small unmanned aircraft systems (UAS), which prohibited dispensing substances without exemptions. To conduct aerial applications, operators must obtain a Part 137 Agricultural Aircraft Operator Certificate, adapted for UAS through streamlined processes introduced in recent years. This certification requires demonstrating safe dispensing capabilities, including knowledge tests and operational approvals, via FAA Form 8710-3. Evolving rules have expanded operational flexibility; in March 2024, the FAA granted exemptions for drones weighing 55 pounds or more, permitting swarming operations, flights without visual observers, and nighttime spraying under specific conditions. These changes addressed prior limitations on beyond visual line of sight (BVLOS) and manned coordination, enabling broader adoption in . Additionally, Remote ID compliance became mandatory for all drones by September 16, 2023, enhancing airspace safety through broadcast of identification and location data. The FAA Reauthorization Act of 2024 directed development of BVLOS rules via a notice of proposed (NPRM), aiming to integrate advanced UAS operations into national while mitigating risks like mid-air collisions. For certification, pilots must hold a Part 107 Remote Pilot Certificate and often state-specific applicator licenses, with agricultural spraying necessitating proof of equipment reliability and drift minimization. Recent petitions, such as those approved for Spray Drones, LLC in July 2025, illustrate ongoing case-by-case expansions for heavier payloads and autonomous features. Internationally, regulations vary significantly; in , aerial pesticide application remains largely prohibited due to drift concerns, though low-altitude drone spraying (2-3 meters above crops) is permitted in select cases under strict environmental rules. Canada prohibits drone pesticide spraying outright as of 2024, prioritizing ground-based methods to avoid regulatory gaps. These disparities highlight evolving global standards, with the U.S. leading in permissive frameworks supported by empirical safety data from exempted operations.

References

  1. [1]
    [PDF] National Aerial Applicator's Manual - EPA
    This manual is a national pesticide applicator certification study guide, covering laws, regulations, and operation and application safety.
  2. [2]
    2023 - Project : USDA ARS
    ... application. Approach Aerial application is a critical component of American agriculture, accounting for almost 20% of all crop production and protection ...
  3. [3]
    [PDF] 100 Years of Aerial Crop Dusting By: FAA Historian Terry Kraus In ...
    The idea of using an airplane for crop dusting came at the suggestion of Charles R. Nellie, an. Ohio Department of Agriculture forester in Cleveland, who shared ...
  4. [4]
    Agriculture by Air | National Air and Space Museum
    Jan 4, 2022 · The very first crop-dusting experiment was conducted 100 years ago in Ohio by U.S. Army pilot Lieutenant John A. Macready, who flew a modified ...
  5. [5]
    Drones for Spraying Pesticides—Opportunities and Challenges
    Jan 17, 2024 · Drones significantly reduce the risk of applicators being contaminated by the pesticides, especially those using backpack sprayers. Emerging ...
  6. [6]
    Industry Facts, Environmental Benefits and FAQs
    The aerial application of crop protection products results in greater harvest yields of crops. This in turn results in less land being used for agricultural ...
  7. [7]
    Aerial application: A sign of spring crop production - Field Crops
    Jun 13, 2024 · Aerial applications are valuable for timing pest management regardless of soil conditions.
  8. [8]
    [PDF] US EPA - Best Practices for Aerial Application - Webinar Materials
    The purpose of classification is to provide the nozzle user with droplet size information primarily to indicate off site spray drift potential and secondarily ...
  9. [9]
    Aerial Spraying and Its Impacts on Human Health in Banana ...
    Oct 16, 2024 · The present work examines the relationship between aerial spraying and its health impacts on the population living in the banana production areas of Ecuador.
  10. [10]
    The Industry's History - National Agricultural Aviation Association
    In the early days, aerial applicators were known as “crop dusters” because they worked with dry chemicals, mostly insecticides. Today, aerial applicators ...
  11. [11]
    A Century of Agricultural Aviation — 1921-2021 - AgAir Update
    Aug 2, 2021 · The first crop dusting test flight targeted a catalpa grove infested by the moth. Catalpa trees were an important natural resource whose ...
  12. [12]
    Milestone moment: 100 years of aerial pesticide applications
    Jul 16, 2021 · So in 1922, aerial application was first used on cotton fields near Tallulah, Louisiana. Over the next hundred years, agricultural aviation ...
  13. [13]
    The History of Agricultural Aviation - Hartzell Propeller
    May 7, 2019 · While aerial applicators were once called “crop dusters” because they used primarily dry chemicals, the term is now outdated. Today, modern ag ...
  14. [14]
    Looking Back at Our First Crop Dusters - The Van Trump Report
    Aug 4, 2023 · On this day in 1921, Army Air Corps pilot Lieutenant John A. Macready, piloting a specially modified Curtiss JN4 Jenny, spread lead arsenate ...<|separator|>
  15. [15]
    Crop Dusting | This Local Life
    In 1921, nearly 5,000 catalpa trees stood on Harry Carver's farm west of Troy. The trees were a source of frustration for Carver because they had ...Missing: details | Show results with:details
  16. [16]
    ​Almanac: The first crop dusting flight - CBS News
    Aug 3, 2014 · On August 3, 1921, a new form of agriculture first took flight. ... Armed with chemical pesticides, crop dusting planes opened an aerial front in ...
  17. [17]
    Crop Dusting History in Troy, Ohio
    Troy, Ohio - Did you know on Aug. 3, 1921 John A. Macready piloting a specially modified Curtiss JN4 Jenny spreads lead arsenate over a grove of catalpa trees ...Missing: details | Show results with:details
  18. [18]
    Agricultural Aviation from Infancy to Adolescence
    In 1923, the development of the first commercial crop dusting company began. There is a question about when it actually started officially as a business.
  19. [19]
    Founding - Delta Flight Museum
    First test flight of the Huff-Daland Duster, the first airplane built for crop dusting. Test pilot is world-famous Harold Harris on loan from the Army to the ...
  20. [20]
    History of Agricultural Aviation Reveals a Series of Turning Points
    Oct 31, 2022 · Huff-Daland, an aircraft company that supplied trainers for the military, in the early 1920s designed a biplane especially for crop dusting, ...
  21. [21]
    Origins of aerial topdressing - Te Ara Encyclopedia of New Zealand
    Mar 1, 2009 · John Lambert of Hunterville is often cited as the first to suggest using aircraft to spread fertiliser. He did this in a letter to his MP in ...
  22. [22]
    First topdressing trials - Te Ara Encyclopedia of New Zealand
    The first aerial topdressing trials were made at Ōhakea in 1948. A New Zealand Air Force Avenger torpedo bomber was fitted with a reserve petrol tank ...
  23. [23]
    [PDF] 1949 - Commercfial Aerial topdressing begins - Nation Dates
    In May 1949, Tiger. Moth ZK-ASO, piloted by John Brazier of Airwork (NZ) Ltd, applied superphosphate at a rate of 56 kilograms per hectare on Sir Heaton ...
  24. [24]
  25. [25]
    A Look At The Huff Daland Duster – Delta's First Aircraft
    Sep 27, 2020 · On July 28th, 1924, the first test flight of the duster occurred. It was piloted by theworld-famous Harold Harris, a decorated serviceman in the ...Missing: date | Show results with:date
  26. [26]
    The History of the Air Tractor - Turbines Inc.
    Snow was 21 when he designed his first aerial application aircraft, the S-1. Introduced in 1951, the plane remained in production until 1957 when it was ...
  27. [27]
    Grumman G-164 Ag-Cat | National Air and Space Museum
    The Ag-Cat's first flight, made on May 27, 1957, went exceedingly well with the second prototype following one month later. Three senior crop dusting pilots ...
  28. [28]
    A Brief History of Piper Aircraft | 85 Years of Piper
    Oct 13, 2025 · The design team at Vero Beach's first project became the PA-25 Pawnee, an agricultural aircraft that went into production at the Lock Haven ...
  29. [29]
    AYRES S-2R THRUSH · The Encyclopedia of Aircraft David C. Eyre
    Using rebuilt Wright engines, the Bull Thrush proved a strong, rugged aircraft and has been used for dusting, spreading, fire fighting, etc, for which purpose ...
  30. [30]
    History of Drones in Agriculture - Drone U™
    May 26, 2024 · This article will delve into this fascinating history of drones in agriculture from projects to mainstream tools on American farms.History of Drones and their... · Early History of Drones in...
  31. [31]
    Yamaha RMAX crop sprayer gets full FAA approval
    Dec 20, 2015 · The RMAX was originally introduced in Japan in 1997 as the culmination of several earlier unmanned helicopter models designed and engineered by ...<|separator|>
  32. [32]
    [PDF] The RMAX Helicopter UAV - DTIC
    Sep 2, 2003 · In light of this situation, Yamaha Motor Co. LTD began developing industrial-use, unmanned helicopters in the 1980s. In 1990 we delivered the ...
  33. [33]
    Yamaha RMAX Unmanned Helicopter Performs First U.S. ...
    May 20, 2016 · In December 2015 Yamaha received Part 137 Agricultural Aircraft Operations Certification from the FAA, the first for an unmanned aerial system.
  34. [34]
    DJI Introduces Company's First Agriculture Drone
    Nov 27, 2015 · The eight-rotor Agras can load more than 10 kilograms of liquid for crop-spraying and can cover between seven and 10 acres per hour.
  35. [35]
    The global drone revolution in agriculture | IFPRI
    Sep 5, 2025 · China leads the world with an estimated 250,000 agricultural drones. Japan and South Korea have some of the highest numbers, relative to their ...Missing: 2020s | Show results with:2020s
  36. [36]
    Global Agricultural Drone Industry Sees Record Growth - DRONELIFE
    May 1, 2025 · By the end of 2024, approximately 400,000 DJI Agriculture drones were in use globally, representing a remarkable 90% increase from 2020. These ...
  37. [37]
    Global Drone Usage and Adoption Continues to Skyrocket While ...
    The global agriculture drone market is projected to grow from USD 6.10 billion in 2024 to USD 23.78 billion by 2032, at a compound annual growth rate (CAGR) of ...
  38. [38]
    [PDF] The Evolution of - Purdue Agriculture
    It is likely that Giles was the first to get both federal and state authorization to use drones to apply pesticides. While this publication focuses specifically ...<|separator|>
  39. [39]
    Exploring the Rise of UAS in Aerial Application - Agricultural Aviation
    Most of the drone work was on corn, soybeans, dry beans, and some vegetables. The drone has been helpful in reaching parts of fields that aircraft have trouble ...Missing: milestones | Show results with:milestones
  40. [40]
    Atomization Models : USDA ARS
    Nov 30, 2022 · The USDA-ARS Aerial Spray Nozzle Models were developed to provide aerial applicators with a tool for determining the droplet size resulting from an application ...
  41. [41]
    Measuring Spray Droplet Size from Agricultural Nozzles Using Laser ...
    Sep 16, 2016 · The work presented here describes methods used in making spray droplet size measurements with laser diffraction equipment for both ground and aerial ...
  42. [42]
    Aerial Application Technology Research - Project : USDA ARS
    Objective: To use Computational Fluid Dynamics (CFD) to simulate primary, from the hydraulic atomizer, and secondary breakup, from air shear, of agricultural ...
  43. [43]
    (PDF) Droplet Size and Velocity Characteristics of Agricultural Sprays
    Aug 6, 2025 · In general, bigger droplet sizes correspond with higher droplet velocities, and smaller droplets with lower droplet velocities. Important ...Missing: physics dusting
  44. [44]
    CFD Simulation of Aerial Crop Spraying - NASA ADS
    The main objective of this research is to study the airflow of aerial crop spraying system using Computational Fluid Dynamics. This paper is focus on the effect ...
  45. [45]
    Dispersion of aerial agricultural sprays; model and validation
    A model has been developed to calculate the dosages of airborne pesticide particles in the downwind area during aerial crop spraying.Missing: physics dusting
  46. [46]
    Numerical simulation analysis of droplet spraying by an agricultural ...
    Nov 1, 2024 · Agricultural Unmanned Aerial Vehicles (UAVs) mainly leverage the downwash airflow generated by rotors for spraying.<|separator|>
  47. [47]
    Influence of the atmospheric boundary layer stability on aerial ...
    In this study, water was used as a carrier agent in pesticide formulations, in which the liquid droplets exhibit a Newtonian fluid behavior.
  48. [48]
    A Fast Analysis of Pesticide Spray Dispersion by an Agricultural ...
    Mar 21, 2022 · The results suggest crosswind speed and droplet size are two leading factors affecting the drift and ground deposition. To increase droplet size ...Missing: dusting | Show results with:dusting
  49. [49]
    Validation of the spray drift modeling software AGDISPpro applied to ...
    Feb 25, 2025 · This study demonstrates that AGDISPpro is a promising tool for modeling off-target spray deposition effects from RPAAS.
  50. [50]
    MODELING FINER DROPLET AERIAL SPRAY DRIFT AND ...
    Many numerical studies have shown that release height, wind speed, and nozzle atomization are the main contributing factors to spray drift. With control of ...
  51. [51]
    [PDF] Aerial Spray Drift and Atomization Recommendations
    A sensitivity analysis was run using three different aerial spray drift models. The combined analysis indicated that droplet size, downwind distance, wind ...
  52. [52]
    Agricultural Spray Nozzles A COMPREHENSIVE REVIEW
    The most common types of spray patterns are flat fan (tapered and even), cone spray, and solid stream. • Tapered flat fan nozzles are designed to be used mainly ...
  53. [53]
    [PDF] Equipment Setup for Aerial Application of Liquid Pesticides
    A different aircraft nozzle is the rotary-centrifugal-energy. Micronair manufactured by Micron (www.micron.co.uk). These nozzles offer great versatility and ...
  54. [54]
    Aerial spray application technology - Cultivar Magazine
    Jun 25, 2020 · The most used devices for generating droplets in aerial applications are rotary atomizers, important allies in rust control.
  55. [55]
    Dry Spreading vs Wet Spreading: A Comparative Analysis in ...
    May 29, 2023 · Explore the differences between dry spreading and wet spreading in helicopter aerial application. Understand their unique advantages and ...
  56. [56]
    Aerial Pesticide Application Q & A - Illinois Department of Agriculture
    Aerial application is often the most efficient and most economical way to apply crop protection products, fertilizer and even seed to grow and protect crops.Missing: modalities | Show results with:modalities
  57. [57]
    [PDF] Advanced Agriculture Aircraft - Primary Design
    The traditional configuration engine - hopper - cockpit and low wing monoplane is dominating market. Few biplanes and types with hopper bellow cockpit are still ...
  58. [58]
    [PDF] Preliminary design of an agricultural airplane - Oregon State University
    maneuvers. Also, the distances required to take off and land would prevent the pilot from using many rough, unprepared airstrips for re- loading operations.
  59. [59]
    Aircraft - Air Tractor
    Air Tractor manufactures a range of rugged turboprop aircraft, each tailored for specific missions. Their simplicity enhances their versatility, making them ...AT-802A · AT-502B · AT-402B · Southeastern Aircraft
  60. [60]
    Five Facts You Need to Know About Aerial Application and UAVs
    Sep 10, 2019 · 1. Aerial application by manned aircraft is by far the fastest application method. Every year aerial application pilots treat approximately 127 million acres ...Missing: modalities | Show results with:modalities
  61. [61]
    [PDF] Aerial Application Equipment for Herbicidal Drift Reduction
    Round spray booms can be clamped to the helicopter skid toes and then rotated to change nozzle orientation by loosen- ing the clamps. Fixed-angle spray bodies, ...
  62. [62]
    Aerial Application - CS Helicopters
    The helicopter clearly has the advantage across the board. You will see better canopy penetration, better spray deposition, and as a result, increased yields ...
  63. [63]
    Top 5 Helicopters for Precision Agricultural Application
    Jul 11, 2024 · The Bell 206 JetRanger, Robinson R44, MD 500, Airbus H125, and Bell 47 each offer distinct benefits that can meet various agricultural needs.
  64. [64]
    [PDF] NAS2-10040 NASACR-152258 Identification of High Payoff ...
    This report documents the results of a study of the uses of helicopters in agriculture and forestry in the United States. Comparisons with ag airplanes.
  65. [65]
    Yamaha Precision Agriculture
    Yamaha unmanned helicopters are designed for a wide range of industrial applications and have been operating commercially since 1991.
  66. [66]
    The RMAX helicopter UAV - ResearchGate
    Yamaha Motor's RMAX industrial use unmanned helicopter is used for crop dusting rice paddies and there are presently more than 2,500 unmanned helicopters being ...Missing: specifications | Show results with:specifications<|control11|><|separator|>
  67. [67]
    An Unmanned Industrial-use Helicopter Bringing Together Three ...
    Additionally, with the RMAX G1 released in 2006, further improvements to the flight control system made it possible for more precise flight even in difficult ...Missing: date | Show results with:date
  68. [68]
    Yamaha RMAX Type II G unmanned helicopter
    This “Autonomous Flight RMAX” mounts two GPS sensors and other control equipment that enable it to fly constantly within 20 or 30 centimeters of the prescribed ...
  69. [69]
    Dispensing Chemicals and Agricultural Products (Part 137) with UAS
    May 23, 2025 · 14 CFR Part 137 governs the use of aircraft, including drones, to dispense or spray substances (including disinfectants).
  70. [70]
    Drone Sprayers: Laws, Mistakes to Avoid, Money Saving Tips (2025 ...
    In March 2024, the FAA started allowing swarming, no visual observer, and night operations for 55-pound and heavier operations.Drone Sprayer Examples · Crop Dusting Drones · United States Drone Spraying...
  71. [71]
    Crop dusting: Exploring aerial application safety by plane or drone
    Jul 30, 2025 · One of the paramount advantages of advancing agricultural technology like drones is that they make ag work easier and, more importantly, safer.
  72. [72]
    In-Flight Measurements of Spray System Droplet Size for Aerial ...
    The key issue is controlling the size of the spray droplets ... system performance on agrochemical application aircraft, commonly known as "crop dusters".<|separator|>
  73. [73]
    Application of a centrifugal disc fertilizer spreading system for UAVs ...
    Apr 30, 2024 · This paper explores the effects of three factors, the baffle retraction (B), spreading disc speed (D), and UAV flight altitude (H), on the granular fertilizer ...
  74. [74]
    Predictive Model of Granular Fertilizer Spreading Deposition ... - MDPI
    The process of spreading granular fertilizer by agricultural drones is essentially the process by which fertilizer particles are released from the spreading ...
  75. [75]
    [PDF] STUDY ON DISTRIBUTION PATTERN OF DRONE SPREADER BY ...
    From the results, it shows that the drone spreader can distribute the granular efficiently at a height of 3 meter compared to a height of 2 and 4 meter.<|control11|><|separator|>
  76. [76]
    Optimization of unmanned aerial vehicle operational parameters to ...
    ... granular fertilizer spreading. The aim of this study is to explore a method to maximize UAV-based rice topdressing fertilizer application efficiency through ...
  77. [77]
    Payload Capacities of Remotely Piloted Aerial Application Systems ...
    Aug 12, 2022 · The test results indicated that each RPAAS platform of varying payload capacity was able to produce an acceptable spray pattern.Missing: mechanisms spreaders
  78. [78]
    In-Flight Droplet Size Monitoring and Control to Improve Aerial ...
    Real-time droplet size feedback will enable applicators to make in-flight and between flight adjustments to achieve the desired droplet spectrum, regardless of ...
  79. [79]
    5 facts about manned aerial application - Farm Progress
    Every year aerial application pilots treat approximately 127 million acres of cropland in the U.S. This equates to 28% of all commercial cropland in the country ...
  80. [80]
    Comparison of UAV and fixed-wing aerial application for alfalfa ...
    Results: Effective and equivalent control of leaf-feeding insect pests was achieved by both methods of aerial application when delivering chlorantraniliprole at ...Missing: studies | Show results with:studies
  81. [81]
    The efficiency of aerial spraying - ResearchGate
    Aug 6, 2025 · Crop yield losses because of insects alone are estimated at 5% in Europe where insecticides are used widely and as much as 21% in Asia where ...<|separator|>
  82. [82]
    Control Efficacy and Deposition Characteristics of an Unmanned ...
    Sep 12, 2022 · As a new low-volume application technology, an unmanned aerial spray system (UASS) is playing an important role in the control of FAW in China.
  83. [83]
    Effects of Adjuvants on Spraying Characteristics and Control Efficacy ...
    Jan 19, 2022 · Adding adjuvants to the spray solution can significantly improve the control efficacy of pesticides on wheat aphids and rust and also prolong ...
  84. [84]
    Herbicide spray drift from ground and aerial applications - Nature
    Oct 26, 2022 · A field spray drift experiment using florpyrauxifen-benzyl was conducted to measure drift from commercial ground and aerial applications.
  85. [85]
    Investigating the impacts of airborne dust on herbicide performance ...
    Feb 15, 2024 · Contrary to expectations, herbicides performed better in dust, except bentazon, which caused a 28% drop in plant height and a 29% decrease in ...
  86. [86]
    Dust and Foliar-Applied Herbicides - farmdoc
    May 4, 2023 · Airborne dust has been shown to reduce the activity of some foliar-applied herbicides, including glyphosate.
  87. [87]
    Aerial Application - an overview | ScienceDirect Topics
    Aerial application is applying liquid fertilizer using aircraft where ground application is impractical, like in hilly or forest areas.Missing: modalities | Show results with:modalities
  88. [88]
    [PDF] sUAS Agricultural Aerial Application Operational Field Test
    The fertilizer granules ranged between 3-5 mm. Flight Planning. The flight planning required for a spreading operation was extensive and included detailed ...
  89. [89]
    Application of a centrifugal disc fertilizer spreading system for UAVs ...
    The following three key factors that influence the fertilizer application efficacy are the baffle retraction (B) of the spreading device, the spreading disc ...<|separator|>
  90. [90]
    Aerial drone reduces fertiliser losses from farm
    Jul 27, 2023 · Aerial drone reduces fertiliser losses from farm. North Queensland cane farmers are embracing cutting-edge agricultural technologies to increase ...
  91. [91]
    [PDF] Aerial application of crop protection products - Regulations.gov
    Aerial application plays a key role in maximizing yield on existing farmland and reducing the need to convert more land into cropland. Research conducted by ...
  92. [92]
    Soybeans can be aerial-seeded with cereal rye to protect your soils
    May 14, 2013 · Aerial seeding of cover crops into standing soybeans prior to harvest is a viable alternative that can address these issues by incorporating ...<|control11|><|separator|>
  93. [93]
    A Comprehensive Guide to Aerial Cover Crop Seeding
    Sep 27, 2021 · Aerial seeding is the application of cover crop via a plane, helicopter, or drone, typically into standing cash crops.
  94. [94]
    Aerial application: The next generation of cover crop seeding
    Sep 7, 2012 · Aerial application is an economical way that farmers can apply cover crops to fields. Cost of aerial application is around $15 - $20 an acre ...Missing: techniques | Show results with:techniques
  95. [95]
    [PDF] Effective Aerial Reseeding Methods: Market Search Report
    Coating is now a method used worldwide for enhancing germination, facilitating accurate aerial spreading, and increasing mechanical planting efficiency. United ...
  96. [96]
    Herbicide Application for Clear-Cuts - Fair Lifts Helicopter Services
    Nonselective Herbicides: These broad-spectrum herbicides are often used in clear-cuts where the goal is total vegetation suppression ahead of reforestation.
  97. [97]
    [PDF] Velpar DF - Hawaii.gov
    ... vegetation suppression may occur due to the different rates required for ... For aerial applications (helicopter only) this is usually a minimum of 5 ...
  98. [98]
    [PDF] Aerial Application - of Fungicide - North Dakota State Library
    Aerial application is an effective method to apply. FHB suppression fungicide to large acreages of small grains in a timely manner. Page 4. For more information ...
  99. [99]
    Articles Tagged with 'aerial seeding' - No-Till Farmer
    Prior to the Green Revolution, cover crops were very common in cash crop rotations, as they were recognized as being useful for fixing nitrogen (N), suppressing ...
  100. [100]
    The Role Of Aerial Application - CropLife
    Dr. Scott Bretthauer, pesticide safety extension specialist with the University of Illinois, conducted a study that recorded a yield increase of 18.6 bushels ...Missing: studies | Show results with:studies
  101. [101]
  102. [102]
    Agricultural drone spraying taking off | Farm Progress
    Aug 19, 2022 · The Agras T30 can spray about 4 acres per tank load and cover up to 40 acres per hour according to Agri Spray's website. Burks said don't expect ...
  103. [103]
    Farmers may want to check the costs of their fungicide application
    The average cost of a fungicide is $10 to $15 per acre, the cost of application is $12 to $15 per acre for aerial and $5 to $8 per acre for ground.
  104. [104]
    Economics of Drone Ownership for Agricultural Spray Applications
    Mar 4, 2025 · The total cost per acre for drone applications, based on the assumptions in Tables 1 and 2, is $12.27 per acre for farmers and $7.39 per acre for custom ...
  105. [105]
    Agricultural Drone Spraying vs. Traditional Crop Management
    Apr 18, 2025 · Cost Savings: Farmers save up to 50% per acre versus traditional aerial spraying. Rapid Response: Deploy drones in hours to treat pest outbreaks ...
  106. [106]
    Comparing ag planes and drones - Farm Progress
    Sep 5, 2025 · From an economic perspective, Zahm offers a straightforward comparison: “Manned aerial application costs about $12 per acre versus $15 per acre ...
  107. [107]
    Revolutionizing Precision Agriculture with GPS+INS Drones
    GPS+INS drones enable direct georeferencing, creating accurate maps of crop health, weed and pest locations, and plant population counts, without image ...
  108. [108]
    Precision Technology Advancements In Aerial Application - The Scoop
    Jan 31, 2024 · Precision in aerial application includes GPS guidance, variable-rate application, and real-time nozzle control based on weather data.Missing: modalities | Show results with:modalities
  109. [109]
    Advancements in variable rate spraying for precise spray ...
    This paper explores the application of a precise and adaptable technique known as unmanned aerial spraying system (UASS)-based variable rate spraying (VRS).
  110. [110]
    Drones in Precision Agriculture: A Comprehensive Review of ... - MDPI
    Our study examines in detail the technological advancements in drone systems, including innovative aerial platforms, cutting-edge multispectral and ...
  111. [111]
    (PDF) Precision Farming with Drone Sprayers: A Review of Auto ...
    May 8, 2025 · The study points out that drone sprayers can cut the use of pesticides by 30–50%, resulting in 60% pesticide drift reduction, and yield increase ...Missing: efficacy | Show results with:efficacy<|separator|>
  112. [112]
    UAV-based agricultural spraying: A study on spiral movements and ...
    Drone-based spiral flights boosted spraying efficiency by 85 % and cut pesticide waste by 15 %, aiding sustainability.
  113. [113]
    A sustainable crop protection through integrated technologies - Nature
    Oct 13, 2025 · Precision pesticide application technology represents a pivotal advancement in modern agriculture for enhancing crop protection efficiency.
  114. [114]
    Aerial Application Technology Research : USDA ARS
    The mission of the Aerial Application Technology Research Unit is to develop and implement new and improved aerial application technologies.Missing: modalities | Show results with:modalities
  115. [115]
    [PDF] W1280 Using Smart Apply Variable-Rate Technology to Improve Air ...
    Sprayers equipped with USDA-developed variable-rate technology apply a reduced volume of pesticide, consistently around 50 percent less and have greater ...
  116. [116]
    Integration of Artificial Intelligence and IoT with UAVs for Precision ...
    This review paper explores the dynamic landscape of precision agriculture and the integration of Unmanned Aerial Vehicles (UAVs) with Artificial Intelligence ( ...
  117. [117]
    Airborne Pesticides from Agricultural Practices: A Critical Review of ...
    This critical review examines the release of pesticides from agricultural practices into the air, with a focus on volatilization, and the factors influencing ...
  118. [118]
    [PDF] The Washington aerial spray drift study
    The measured air concentrations were significantly higher than the model calculated concentrations during the active spray period. The higher measured ...
  119. [119]
    Monitoring and risk analysis of residual pesticides drifted by ... - Nature
    Jul 5, 2023 · The drift rate of pesticides tends to decrease by up to 100% as the buffer distance from aerial sprayed area increases or when a windbreak, such ...
  120. [120]
    Herbicide drift study validates EPA prediction models, provides new ...
    Apr 6, 2023 · Results from the research indicated that aerial applications had an increase in downwind spray drift of about three- to five-fold compared to ...
  121. [121]
    [PDF] Toxic hazards in aerial application - Federal Aviation Administration
    The nature of the chemicals, the symptoms of toxicity, recommended treatment, and suggestions for safe-handling, are discussed. The introduction of the ...
  122. [122]
    Human Health Issues Related to Pesticides | US EPA
    Sep 11, 2025 · The health effects of pesticides depend on the type of pesticide. Some, such as the organophosphates and carbamates, affect the nervous system.Missing: dusting empirical
  123. [123]
  124. [124]
    Pesticides and Cancer | Pesticide Action & Agroecology Network ...
    Cropduster pilots and farm women have higher rates of skin cancer. An ounce of prevention. Despite the growing scientific consensus that environmental ...Missing: illness | Show results with:illness
  125. [125]
    A systematic review of pesticide exposure, associated risks, and ...
    This review identified consistent associations between chronic pesticide exposure and non-communicable diseases, including cancer, neurological disorders, and ...Missing: empirical | Show results with:empirical
  126. [126]
    Pesticide exposure of operators during mixing and loading a drone
    Nov 29, 2024 · This study evaluated operator exposure during mixing and loading phases of drone-based pesticide application, specifically examining potential and actual ...
  127. [127]
    [PDF] AC 137-1 - Agricultural Aircraft Operations
    The knowledge and skill tests are designed primarily for the new or Inexperienced aerial applicator pilot. The Federal. Aviation Agency is primarily concerned ...
  128. [128]
    [PDF] NAAA PROFESSIONAL OPERATING GUIDELINES
    aerial and ground crew activities. Discussion. The field manager may ... Aerial application pilots should use safe piloting techniques throughout the aerial.
  129. [129]
    Pesticide Exposure of Operators from Drone Application: A Field ...
    Dec 5, 2023 · Compared to handheld spray equipment, the use of drones for pesticide application significantly reduces the operator exposure.
  130. [130]
    Exposure Routes and Health Risks Associated with Pesticide ...
    Jun 19, 2022 · The purpose of this paper is to provide scientific information for policymakers in order to allow the development of proper pesticide ...
  131. [131]
    Managing Pesticide Drift - University of Florida
    Scientists recognize that almost every pesticide application produces some amount of drift away from the target area. Not all drift may be harmful or illegal.Missing: non- | Show results with:non-<|control11|><|separator|>
  132. [132]
    Comparison of Droplet Size, Coverage, and Drift Potential from UAV ...
    This study compared droplet size, coverage, and drift potential of sprays from UAV application methods to those from ground (implement) sprayer methods on corn ...
  133. [133]
    Aerial Application Technology Research - Publication : USDA ARS
    Apr 6, 2018 · Generally, increases in droplet size resulted in decreased efficacy, though an increase in spray rate was found to buffer this effect. Optimal ...
  134. [134]
  135. [135]
    14 CFR Part 137 -- Agricultural Aircraft Operations - eCFR
    (a) No person may operate an aircraft unless a facsimile of the agricultural aircraft operator certificate, under which the operation is conducted, is carried ...137.71 – 137.77 · Title 14 · Subpart C —Operating Rules · Personnel. (FAR 137.41)
  136. [136]
    [PDF] Guidelines on good practice for aerial application of pesticides
    Guidelines on minimum requirements for agricultural pesticide application equipment;. An important objective of these guidelines is to assist FAO and other.
  137. [137]
  138. [138]
  139. [139]
    L_2009309EN.01007101.xml - EUR-Lex - European Union
    Member States shall designate the authorities competent for establishing the specific conditions by which aerial spraying may be carried out, for examining ...
  140. [140]
    Pesticides: Drone spraying authorized in France for 'low-risk ...
    Apr 11, 2025 · Aerial spraying was banned in Europe by the 2009 directive on pesticides – a ban transposed into French national law in 2011. Since then ...<|separator|>
  141. [141]
    [PDF] State of Global Aviation Safety - ICAO
    ICAO promulgates Standards and Recommended Practices (SARPs) to facilitate harmonised regulations in aviation safety, security, efficiency and environmental ...
  142. [142]
    Commission mulls revision of pesticide rules to facilitate aerial ...
    Aug 28, 2025 · The European Commission is considering dropping current restrictions on aerial spraying of pesticides as part of preparations for a ...Missing: standards | Show results with:standards
  143. [143]
    [PDF] AC 137-1B - Certification Process for Agricultural Aircraft Operators
    Aug 21, 2017 · This AC describes an acceptable means for agricultural aircraft operators to apply for a certificate under 14 CFR part 137, and addresses ...<|control11|><|separator|>
  144. [144]
    14 CFR § 137.19 - Certification requirements.
    The applicant must hold a current US private, commercial, or airline transport pilot certificate and be properly rated for the aircraft to be used.
  145. [145]
    14 CFR 137.19 -- Certification requirements. - eCFR
    (e) Knowledge and skill tests. The applicant must show, or have the person who is designated as the chief supervisor of agricultural aircraft operations for him ...
  146. [146]
    [PDF] Agricultural Airman Guidelines
    The AAG assists with knowledge tests and provides safety guidance, organized by areas of operation and tasks, within the Airman Certification Standards.
  147. [147]
    [PDF] Guidance for aerial application of pesticides
    In this guidance, drones used for applying pesticides are referred to as “un-crewed aerial spraying systems” (UASS) to distinguish them from un-crewed aerial ...
  148. [148]
    How to Become an Aerial (Drone) Pesticide Applicator
    Jun 3, 2025 · To obtain the certificate, you will need to fill out FAA Form 8710-3 Agricultural Aircraft Operator Certificate Application. Upon completion ...
  149. [149]
    Policy - National Agricultural Aviation Association
    The American Relief Act, 2025, signed into law on December 21, 2024 ... All Drones Must Operate in Accordance with Remote ID Rule by September 16, 2023.
  150. [150]
    [PDF] Notice of proposed rulemaking (NPRM)
    The FAA Reauthorization Act of 2024 directs the development of this proposed rule. This proposed rule is necessary to support the integration of UAS into the ...
  151. [151]
    [PDF] Spray Drones - Regulations.gov
    Sep 11, 2025 · The Basis for the FAA's Decision. By letters dated July 21, 2025, you petitioned the FAA on behalf of Spray Drones, LLC. (Spray Drones) for an ...
  152. [152]
    Europe Crop Protection Regulatory Update / Precision farming - knoell
    May 20, 2025 · In general, aerial application of plant protection products is prohibited in Europe. It is considered that aerial spraying of pesticides has the potential to ...
  153. [153]
    Drone Spraying in Canadian Agriculture (up to 2024) - Sprayers 101
    Apr 2, 2025 · It is currently illegal to spray pesticides from a drone in Canada, whether it is on your property or not.