Submitted:
25 February 2025
Posted:
25 February 2025
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Abstract
Keywords:
1. Introduction
2. Materials and Methods
2.1. Study Area

2.2. Materials and Equipment
2.3. Experimental Procedures

2.4. Computed Coefficient of Uniformity
3. Results and Discussion
3.1. Spray Range
3.2. Water Distribution Patterns

3.3. Simulated CUs

3.4. Droplet Size Distributions
3.5. Statistical Analyses of Droplet Diameter
4. Conclusions
- Larger nozzle sizes generally increased the throw radius, with minimal variation observed between higher operating pressures. Given the rising cost of energy, operating at lower pressures can offer a practical balance between performance and water conservation, making it a more energy-efficient option for irrigation systems.
- The performance of the sprinkler system, including application rates and uniformity, varied with nozzle size and pressure. Larger nozzles contributed to more uniform water distribution, leading to more consistent irrigation. Smaller nozzles, while providing higher application rates at certain distances, showed greater variability in distribution, emphasizing the importance of nozzle selection for optimal performance.
- The Coefficient of Variation (CV) analysis revealed that the system exhibited better uniformity with specific nozzle sizes at certain pressures, emphasizing the critical role of selecting the right nozzle size to minimize variability in water distribution. This ensures more consistent coverage across the irrigated area, which is essential for efficient irrigation.
- The droplet size distribution was found to vary with pressure, with smaller droplets dominating at lower pressures. The distribution of droplet sizes affects both the efficiency of water application and the potential for evaporation losses, suggesting that optimizing droplet size is critical for maximizing irrigation efficiency.
Author Contributions
Acknowledgments
Conflicts of Interest
References
- DeBoer, D.W.; Monnens, M.J.; Kincaid, D.C. Measurement of sprinkler drop size. Appl. Eng. Agric. 2001, 17, 11–15.
- Kohl, R.A.; Bernuth, R.D.; Heubner, G. Drop size distribution measurement problems using a laser unit. Trans. ASAE 1985, 28, 190–192. Water 2018, 10, 1301 14 of 15 17.
- Yuan S Q, Darko R O, Zhu X Y, Liu J P, Tian K. Optimization of movable irrigation system and performance assessment of distribution uniformity under varying conditions[J]. Int J Agric & Biol Eng. 2017, 10(1): 72-79.
- Thompson, A.; Gilley, J.R.; Norman, J.M. Sprinkler water droplet evaporation a plant canopy model. Trans. ASARE 1993, 36, 743–750.
- Lorenzini, G.; Wrachien, D. Performance assessment of sprinkler irrigation system a new indicator for spray evaporation losses. J. Int. Comm. Irrig. Drain. 2005, 54, 295–305.
- Bautista, C.; Salvador, R.; Burguete, J. Comparing methodologies for the characterization of water drops emitted by an irrigation sprinkler. Trans. ASABE 2009, 52, 1493–1504.
- Wilcox, J.C.; Swailes, G.E. Uniformity of water distribution by some under tree orchard sprinklers. Sci. Agric. 1947, 27, 565–583.
- Hart, W.E.; Reynolds, W.N. Analytical design of sprinkler systems. Trans. Am. Soc. Agric. Eng. 1965, 8, 83–85. 23.
- Kay, M. Sprinkler Irrigation Equipment and Practice; Batsford Limited: London, UK, 1988.
- Keller, J.; Bliesner, R.D. Sprinkle and Trickle Irrigation; Van Nostrand Reinhold Pun: New York, NY, USA, 1990. 25. Xiang, Q.J.; Xu, Z.D.; Chen, C. Experiments on air and water suction capability of 30PY impact sprinkler. J. Drain. Irrig. Mach. Eng. 2018, 36, 82–87.
- Karmeli, D. Estimating sprinkler distribution pattern using linear regression. Trans. ASAE 1978, 21, 682–686.
- Liu, J.P.; Liu, W.Z.; Bao, Y.; Zhang, Q.; Liu, X.F. Drop size distribution experiments of gas-liquid two phase’s fluidic sprinkler. J. Drain. Irrig. Mach. Eng. 2017, 35, 731–736.
- Liu, J.P.; Yuan, S.Q.; Li, H.; Zhu, X.Y. Numerical simulation and experimental study on a new type variable-rate fluidic sprinkler. J. Agric. Sci. Technol. 2013, 15, 569–581.
- Dwomoh, F.A.; Yuan, S.; Hong, L. Field performance characteristics of fluidic sprinkler. Appl. Eng. Agric. 2013, 29, 529–536.
- Zhu, X.; Yuan, S.; Jiang, J.; Liu, J.; Liu, X. Comparison of fluidic and impact sprinklers based on hydraulic performance. Irrig. Sci. 2015, 33, 367–374.
- Zhang, A.M.; Sun, P.N.; Ming, F.R.; Colagrossi, A. Smoothed particle hydrodynamics and its applications in fluid-structure interactions. J. Hydrodynamics 2017, 29, 187–216.
- Zhu, X.; Yuan, S.; Liu, J. Effect of sprinkler head geometrical parameters on hydraulic performance of fluidic sprinkler. J. Irrig. Drain. Eng. 2012, 138, 1019–1026.
- Coanda, H. Device For Deflecting a Stream of Elastic Fluid Projected Into an Elastic Fluid. U.S. Patent No. 2,052,869, 1 Spetember 1936.
- American Society of Biological Engineers. Procedure for Sprinkler Testing and Performance Reporting; ASAE S398.1; American Society of Biological Engineers: St. Joseph, MI, USA, 1985.
- Al-araki, G.Y. Design and Evaluation of Sprinkler Irrigation System. Doctoral Dissertation; University of Khartoum: Khartoum, Sudan, 2002.
- Chen, D.; Wallender, W.W. Droplet size distribution and water application with low-pressure sprinklers. Trans. ASAE 1985, 28, 511–516.
- Li, J.; Kawano, H.; Yu, K. Droplet size distributions from different shaped sprinkler nozzles. Trans. ASAE 1994, 37, 1871–1878.
- X. Zhu, A. Fordjour, S. Yuan, F. A. Dwomoh, and Z. Issaka, “Performance optimization of a newly designed dynamic fluidic sprinkler,” vol. 37, no. 1, pp. 33–41, 2021.
- Tarjuelo, J.M.; Montero, J.; Valiente, M.; Honrubia, F.T.; Ortiz, J. Irrigation uniformity with medium size sprinkler, part I: Characterization of water distribution in no—Wind conditions. Trans. ASAE 1999, 42, 677–689.
- King, B.A.; Winward, T.W.; Bjorneberg, D.L. Comparison of Sprinkler Droplet Size and Velocity Measurements using a Laser Precipitation Meter and Photographic Method. Am. Soc. Agric. Biol. Eng. 2013, 131594348.
- Sudheera, K.P.; Panda, R.K. Digital image processing for determining drop sizes from irrigation spray nozzles. Agric. Water Manag. 2000, 45, 159–167.
- Tarjuelo JM, Montero J, Carrión PA, Honrubia FT, Calvo MA (1999b) Irrigation Uniformity 823 with Medium Size Sprinklers. Part II. Influence of wind and other factors on water 824 distribution”. Trans ASAE 42(3):677–689.
- Wang, X., Fernandez, R.T., Cregg, B.M., Auras, R., Fulcher, A., Cochran, D.R., Niu, G., Sun, 826 Y., Bi, G., Nambuthiri, S., Geneve, R.L., 2015. Multistate Evaluation of Plant Growth 827 and Water Use in Plastic and Alternative Nursery Containers. HortTechnology 25, 42–49. 828. [CrossRef]
- West, Dr.J., 2014. Water Balance Case Study at an Outdoor Ornamental; Nursery Water 830 Resource Adaptation and Management Initiative. Ontario, Canada.
- Fordjour A, Zhu X Y, Jiang C L, Liu J P. Effect of riser height on rotation uniformity and application rate of the dynamic fluidic sprinkler[J]. Irrigation and Drainage, 2020, 69(4) :618-632.
- Zhang, L., Merkley, G.P., Pinthong, K., 2013. Assessing whole-field sprinkler irrigation 835 application uniformity. Irrig. Sci. 31, 87–105. [CrossRef]
- King, B.A.; Winward, T.W.; Bjorneberg, D.L. Comparison of Sprinkler Droplet Size and Velocity Measurements using a Laser Precipitation Meter and Photographic Method. Am. Soc. Agric. Biol. Eng. 2013, 131594348.
- Sudheera, K.P.; Panda, R.K. Digital image processing for determining drop sizes from irrigation spray nozzles. Agric. Water Manag. 2000, 45, 159–167.
- Thompson, A.; Gilley, J.R.; Norman, J.M. Sprinkler water droplet evaporation a plant canopy model. Trans. ASARE 1993, 36, 743–750.
- Liu J P, Liu X F, Zhu X Y, Yuan S Q. Droplet characterisation of a complete fluidic sprinkler with different nozzle dimensions, Biosystems Engineering. 2016, 148(6) 90-100.
- Lorenzini, G.; Wrachien, D. Performance assessment of sprinkler irrigation system a new indicator for spray evaporation losses. J. Int. Comm. Irrig. Drain. 2005, 54, 295–305.
- Zhang, L., Hui, X., Chen, J., 2018. Effects of terrain slope on water distribution and application 832 uniformity for sprinkler irrigation. Int. J. Agric. Biol. Eng. 11, 120–125. 833. [CrossRef]



| Items | Specification |
|---|---|
| Pressure | 100-400 kPa |
| Spraying Radius | 4.0 – 8.5 m |
| Nozzle sizes (s) | 3, 4, 5 mm |
| Thread Size | ¾ inches |
| Spray Pattern | Full-circle (360º) |
| Material used | Zinc/brass |
| Spray range (m) | Standard deviation (%) | Discharge coefficient | Standard deviation (%) | ||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Nozzle size(mm) | P | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 |
| 3 | 5.2 | 5.4 | 5.5 | 6.4 | 2.4 | 2.3 | 2.5 | 2.4 | 0.62 | 0.63 | 0.65 | 0.66 | 2.0 | 2.21 | 2.2 | 2.5 | |
| 4 | 6.2 | 6.4 | 6.7 | 6.9 | 2.3 | 2.1 | 2.4 | 2.2 | 0.65 | 0.67 | 0.69 | 0.71 | 2.1 | 2.27 | 2.3 | 2.6 | |
| 5 | 6.5 | 6.8 | 7.0 | 7.7 | 2.6 | 2.4 | 2.5 | 2.8 | 0.68 | 0.70 | 0.73 | 0.74 | 2.5 | 2.3 | 2.4 | 2.9 | |
| Type | di/mm | Dv/mm | D50/mm | SDD/mm | CVD/% | |||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| kPa | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 |
| 3mm | 0.82 | 0.73 | 0.66 | 0.78 | 2.6 | 2.22 | 2.20 | 2.30 | 0.22 | 0.21 | 0.22 | 0.18 | 0.85 | 0.66 | 0.73 | 0.5 | 108 | 90 | 111 | 103 |
| 4mm | 7.36 | 0.77 | 0.70 | 0.60 | 2.87 | 7.52 | 2.14 | 6.81 | 0.36 | 0.22 | 0.21 | 0.17 | 1.01 | 0.98 | 0.93 | 0.8 | 111 | 129 | 132 | 120 |
| 5mm | 0.89 | 0.78 | 0.73 | 0.60 | 2.85 | 2.35 | 2.20 | 2.01 | 0.42 | 0.30 | 0.24 | 0.18 | 0.62 | 0.79 | 0.79 | 0.6 | 120 | 102 | 101 | 98 |
| d10/mm | d50/mm | d90/mm | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| kPa | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 | 100 | 150 | 200 | 250 |
| 3mm | 0.07 | 0.08 | 0.07 | 0.07 | 0.51 | 0.35 | 0.51 | 0.30 | 1.53 | 1.40 | 1.50 | 1.53 |
| 4mm | 0.06 | 0.07 | 0.05 | 0.08 | 0.48 | 0.31 | 0.33 | 0.28 | 0.49 | 1.37 | 1.45 | 1.40 |
| 5mm | 0.07 | 0.04 | 0.04 | 0.07 | 0.44 | 0.26 | 0.30 | 0.25 | 0.3 | 1.34 | 1.44 | 1.50 |
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