| Literature DB >> 31249737 |
Collin J Preftakes1, Jerome J Schleier2, Greg R Kruger3, David K Weaver1, Robert K D Peterson1.
Abstract
Loss of crop protection products when agricultural spray applications drift has economic and ecological consequences. Modification of the spray solution through tank additives and product formulation is an important drift reduction strategy that could mitigate these effects, but has been studied less than most other strategies. Therefore, an experimental field study was conducted to evaluate spray drift resulting from agricultural ground applications of an insecticide formulated as a suspension concentrate (SC) and as a wettable powder (WP), with and without two adjuvants. Droplet sizes were also measured in a wind tunnel to determine if indirect methods could be substituted for field experimentation to quantify spray drift from these technologies. Results suggest that spray drift was reduced by 37% when comparing the SC to the WP formulation. As much as 63% drift reduction was achieved by incorporating certain spray adjuvants, but this depended on the formulation/adjuvant combination. The wind tunnel data for droplet spectra showed strong agreement with field deposition trends, suggesting that droplet statistics could be used to estimate drift reduction of spray solutions. These findings can be used to develop a classification scheme for formulated products and tank additives based on their potential for reducing spray drift.Entities:
Keywords: Agricultural spray drift; Drift reduction technology; Pesticide formulations
Year: 2019 PMID: 31249737 PMCID: PMC6589081 DOI: 10.7717/peerj.7136
Source DB: PubMed Journal: PeerJ ISSN: 2167-8359 Impact factor: 2.984
Figure 1Field layout for drift experiment in Fresno, California.
Blue circles represent locations where only horizontal ground samplers (14-cm diameter Petri dishes) were placed. Blue triangles represent locations where ground samplers and two-m vertical samplers (rotating impingers) were placed. Blue rectangles represent locations were ground samplers and one- and two-m vertical samplers were placed. Black rectangles (located at farthest downwind distance from spray source) represent locations were only one- and two-m vertical samplers were placed, no ground samplers were placed there in 2015 and 2016. The control area was located 15 m from the farthest upwind edge of spray line 2. Collector locations in diagram are not representative of actual distances in the field.
Sample areas for in-swath and downwind ground deposition samplers.
| Swath | Downwind | ||||
|---|---|---|---|---|---|
| Sample location (m) | Range (m) | Sample area (given a sampler diameter of 14 cm) (cm2) | Sample location (m) | Range (m) | Sample area (given a sampler diameter of 14 cm) (cm2) |
| 18.13 | 0–36.25 | 50,750 | 1 | 0–1.5 | 2,100 |
| 54.38 | 36.25–72.5 | 50,750 | 2 | 1.5–3 | 2,100 |
| 90.63 | 72.5–108.75 | 50,750 | 4 | 3–6 | 4,200 |
| 126.88 | 108.75–145 | 50,750 | 8 | 6–12 | 8,400 |
| 16 | 12–24 | 16,800 | |||
| 32 | 24–32 | 11,200 | |||
Application rates of Rhodamine-WT (RWT) for each treatment.
| Treatment | Dye mixing rate (μg/mL) | Flow rate (L/ha) | RWT application rate (μg/cm2) |
|---|---|---|---|
| Entrust SC insecticide | 80.06 | 123.47 | 0.0988 |
| Entrust insecticide | 96.46 | 127.21 | 0.1227 |
| Entrust SC & PowerLock | 103.15 | 127.21 | 0.1312 |
| Entrust SC & Maximizer | 72.35 | 128.15 | 0.0927 |
| Entrust & PowerLock | 93.26 | 130.02 | 0.1213 |
| Entrust & Maximizer | 83.38 | 127.21 | 0.1061 |
| PowerLock | 93.69 | 124.41 | 0.1165 |
| Maximizer | 80.41 | 124.41 | 0.1000 |
| Water | 82.07 | 127.21 | 0.1044 |
Notes:
Suspension concentrate formulation of the insecticide spinosad.
Wettable powder formulation of the insecticide spinosad.
Spray enhancement additives.
Summary statistics for numerical variables.
| Variable | Units | Mean | SD | Range | |
|---|---|---|---|---|---|
| Minimum | Maximum | ||||
| Rhodamine-WT | μg/cm2 | 2.88 × 10−3 | 6.27 × 10−3 | 2.60 × 10−7 | 5.08 × 10−2 |
| Active ingredient | μg/cm2 | 0.0236 | 0.0619 | 6.05 × 10−7 | 0.6938 |
| Tank solution | μL/plate | 5.025 | 0.0109 | 4.50 × 10−4 | 88.52 |
| VMD | μm | 36.7 | 5.08 | 26.08 | 52.54 |
| Wind speed | m/s | 2.27 | 0.6865 | 0.3 | 3.82 |
| Temp @2.5 m | °C | 20.39 | 4.14 | 13.38 | 30.14 |
| Temp @9.5 m | °C | 21.2 | 4.56 | 12.96 | 31.08 |
| RH @2.5 m | % | 58.55 | 12.23 | 26.94 | 82.08 |
| RH @9.5 m | % | 55.03 | 13.68 | 22.67 | 86.16 |
| Stability ratio | 2.11 | 5.83 | −27.22 | 32.56 | |
| Distance | m | 1 | 32 | ||
Note:
VMD, volume median diameter; Temp, temperature; RH, relative humidity.
Treatments ordered by droplet size and ground deposition.
| Treatments containing active ingredient sprayed in wind tunnel | % Spray volume containing droplets ≤141 μm (SD) | Treatments ordered by ground deposition (highest to lowest) | Droplet size is indication of spray drift |
|---|---|---|---|
| WP | 19.98 (0.61) | WP | Yes |
| SC | 15.30 (0.28) | SC | Yes |
| SC & Maximizer | 13.62 (0.03) | SC & Maximizer | Yes |
| WP & Maximizer | 13.33 (0.08) | WP & Maximizer | Yes |
| WP & PowerLock | 12.18 (0.23) | WP & PowerLock | Yes |
| SC & PowerLock | 11.69 (0.08) | SC & PowerLock | Yes |
Notes:
WP, Entrust (wettable powder formulation of insecticide spinosad); SC, Entrust SC (suspension concentrate formulation of insecticide spinosad).
The treatments with the largest fraction of “fine” droplets (100–175 μm) measured in the wind tunnel had the highest downwind ground deposition in the field study at any downwind distance.
Coefficient estimates and SEs for selected ground deposition model.
| Ref. = Water | Estimate | Std. error | Pr(>| | |
|---|---|---|---|---|
| (Intercept) | −5.42587 | 0.20664 | −26.258 | <0.0001 |
| WP | 0.304542 | 0.146499 | 2.079 | 0.038 |
| SC | −0.16177 | 0.166646 | −0.971 | 0.332 |
| Maximizer | −0.54323 | 0.150797 | −3.602 | 0.0003 |
| PowerLock | −1.05842 | 0.148866 | −7.11 | <0.0001 |
| SC Maximizer | −0.49139 | 0.153832 | −3.194 | 0.001 |
| SC PowerLock | −0.89444 | 0.146654 | −6.099 | <0.0001 |
| WP Maximizer | −0.65979 | 0.160134 | −4.12 | <0.0001 |
| WP PowerLock | −0.68294 | 0.159084 | −4.293 | <0.0001 |
| Log distance (m) | −1.66215 | 0.02758 | −60.267 | <0.0001 |
| Wind speed (m/s) | 0.455592 | 0.063746 | 7.147 | <0.0001 |
| RH (%) | 0.019221 | 0.006816 | 2.82 | 0.005 |
| WP × RH (%) | −0.00602 | 0.01066 | −0.565 | 0.572 |
| SC × RH (%) | −0.03335 | 0.021728 | −1.535 | 0.125 |
| Maximizer × RH (%) | −0.03756 | 0.014681 | −2.558 | 0.010 |
| PowerLock × RH (%) | 0.034091 | 0.010877 | 3.134 | 0.001 |
| SC Maximizer × RH (%) | 0.017643 | 0.016531 | 1.067 | 0.286 |
| SC PowerLock × RH (%) | 0.002819 | 0.009565 | 0.295 | 0.768 |
| WP Maximizer × RH (%) | 0.03434 | 0.014663 | 2.342 | 0.019 |
| WP PowerLock × RH (%) | −0.00109 | 0.009062 | −0.121 | 0.904 |
Notes:
WP, Entrust (wettable powder formulation of insecticide spinosad); SC, Entrust SC (suspension concentrate formulation of insecticide spinosad); RH, relative humidity.
Data centered on mean RH so that the estimates of the main term effects can be interpreted at average RH instead of zero. Overall model had an adjusted R2 of 0.8934.
Spray enhancement additives.
Statistically significant at α = 0.05.
Figure 2Predicted deposition of Rhodamine-WT as a function of distance at average RH and wind speed.
After controlling for wind speed and RH, this decrease in deposition was estimated to be 68.4% with an associated 95% confidence interval from 67.19% to 69.57% for every doubling of distance (i.e., going from one ground sample to the next in this study). Adjusted R2 of 0.8934 from overall model and dotted lines represent the 95% CI.
Figure 3Predicted deposition of Rhodamine-WT as a function of wind speed at average RH and a distance of one m.
All treatments exhibited more deposition in higher wind conditions with every additional 1-unit increase in wind speed (m/s) resulting in an estimated 36.59% increase in deposition after controlling for distance and RH (95% CI from 28.13% to 44.06%). Adjusted R2 of 0.8934 from overall model and dotted lines represent the 95% CI.
Coefficient estimates and SEs for selected volume median diameter (VMD).
| Ref. = Water | Estimate | Std. error | Pr(>| | |
|---|---|---|---|---|
| (Intercept) | 3.94112 | 0.049635 | 79.402 | <0.0001 |
| WP | 0.13277 | 0.03384 | 3.923 | 0.0001 |
| SC | 0.118991 | 0.029544 | 4.028 | <0.0001 |
| Maximizer | 0.073092 | 0.031878 | 2.293 | 0.023 |
| PowerLock | 0.134597 | 0.031834 | 4.228 | <0.0001 |
| SC Maximizer | 0.088095 | 0.030629 | 2.876 | 0.004 |
| SC PowerLock | 0.149319 | 0.030304 | 4.927 | <0.0001 |
| WP Maximizer | 0.108916 | 0.029193 | 3.731 | 0.0002 |
| WP PowerLock | 0.093255 | 0.037198 | 2.507 | 0.013 |
| Distance (m) | −0.00069 | 0.00068 | −1.02 | 0.309 |
| RH (%) | −0.00546 | 0.000679 | −8.042 | <0.0001 |
| Height (m) | −0.07025 | 0.013066 | −5.377 | <0.0001 |
| Wind speed (m/s) | 0.007064 | 0.035475 | 0.199 | 0.842 |
| WP | 0.124947 | 0.061732 | 2.024 | 0.044 |
| SC | 0.093626 | 0.041187 | 2.273 | 0.024 |
| Maximizer × Wind speed (m/s) | −0.04367 | 0.053981 | −0.809 | 0.419 |
| PowerLock × Wind speed (m/s) | 0.071954 | 0.050305 | 1.43 | 0.154 |
| SC Maximizer × Wind speed (m/s) | 0.081286 | 0.04373 | 1.859 | 0.064 |
| SC PowerLock × Wind speed (m/s) | 0.084699 | 0.058615 | 1.445 | 0.149 |
| WP Maximizer × Wind speed (m/s) | 0.01789 | 0.042898 | 0.417 | 0.677 |
| WP PowerLock × Wind speed (m/s) | −0.03036 | 0.050863 | −0.597 | 0.551 |
Notes:
WP, Entrust (wettable powder formulation of insecticide spinosad); SC, Entrust SC (suspension concentrate formulation of insecticide spinosad); RH, relative humidity.
Data centered on mean wind speed so that the estimates of the main term effects can be interpreted at average wind speed instead of zero. Overall model had an adjusted R2 of 0.4187.
Statistically significant at α = 0.05.