TECHNICAL PAPERS
Jan 1, 1993

Sprinkler Droplet Effects on Infiltration. II: Laboratory Study

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Publication: Journal of Irrigation and Drainage Engineering
Volume 119, Issue 1

Abstract

A companion paper by Chang and Hills, 1992, describes the stress distribution in a soil surface during water droplet impact according to a numerical simulation model. This project was undertaken to relate field data to the simulated stress values. In this paper, sprinkler droplet impact angle and surface water layer depth were studied in relation to a soil's infiltration rate. Droplet impact angles were monitored at different distances from the head of a conventional medium‐size sprinkler. The test variables included nozzles with diameters of 3.2mm(18in.),4.0mm(532in.),and4.8mm(316in.), and operation pressures of 200 kPa, 300 kPa, and 400 kPa. The impact angles ranged from approximately 90° near the nozzle to approximately 40° near the wetted perimeter. Impact angles were not significantly affected by nozzle size; however, increase in pressure caused the angles near the wetted perimeter to increase. Infiltration tests were then conducted on three soil types with droplet impact angles of 90°, 60°, and 45°. The basic infiltration rate for all soil types decreased in the following order of impact angle: no impact, 90°, 45°, and 60°. These results correlate with the shear stresses predicted for those conditions by the simulation model.

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References

1.
Agassi, M., Morin, J., and Shainberg, I. (1985). “Effect of raindrop impact energy and water salinity on infiltration rates of sodic soils.” Soil Sci. Am. Soc. J., 49(1), 186–190.
2.
Al‐Durrah, M. M., and Bradford, J. M. (1982). “The mechanism of raindrop splash on soil surface.” Soil Sci. Soc. Am. J. 46(5), 1086–1090.
3.
Ben‐Hur, M., and Letey, J. (1989). “Effect of polysaccharides, clay dispersion, and impact energy on water infiltration.” Soil Sci. Am. Soc. J., 53(1), 233–238.
4.
Borcher, C. A., Skopp, J., Watts, D., and Schepers, J. (1984). “Determining unsaturated hydraulic conductivity for fine textured soils.” Paper No. 84‐2513, Am. Soc. of Agric. Engrs., St. Joseph, Mich.
5.
Chang, W.‐J., and Hills, D. J. (1992). “Sprinkler droplet effects on infiltration. I: Impact simulation.” J. Irrig. Drain. Engrg., ASCE, 119(1), 142–156.
6.
Ghadiri, H., and Payne, D. (1986). “The risk of leaving the soil surface unprotected against falling rain.” Soil and Tillage Res., 8(1), 119–130.
7.
Helalia, A. M., Letey, J., and Graham, R. C. (1988). “Crust formation and clay migration effects on infiltration rate.” Soil Sci. Am. Soc. J. 52(1), 251–255.
8.
Hillel, D. (1982). Introduction to soil physics. Academic Press, Orlando, Fla.
9.
Hills, D. J., and Gu, Y. (1989). “Sprinkler volume mean droplet diameter as a function of pressure.” Trans. Am. Soc. of Agric. Engrs., 32(2), 471–476.
10.
Hinkle, S. E. (1987). “Water drop ballistic with drag coefficient dependent on droplet size and velocity.” Paper No. 87‐2596, Am. Soc. of Agric. Engrs., St. Joseph, Mich.
11.
Huang, C., Bradford, J. M., and Cushman, J. H. (1982). “A numerical study of raindrop impact phenomena: The rigid case.” Soil Sci. Soc. Am. J., 46(1), 14–19.
12.
“Water penetration problems in California soils.” (1984). Technical Report 10011, Dept. of Land, Air and Water Res., Univ. of California, Davis, Calif.
13.
Magono, C. (1954). “Shorter contribution on the shape of water drops falling in stagnant air.” J. Meteorology, 11(1), 77–79.
14.
McIntyre, D. S. (1958). “Soil splash and the formation of surface crusts by raindrop impact.” Soil Sci. 85(5), 261–266.
15.
McTaggart‐Cowan, J. D., and List, R. (1975). “Collision and breakup of water drops at terminal velocity.” J. Atmospheric Sci., 32(5), 1401–1411.
16.
Mohammed, D., and Kohl, R. A. (1986). “Infiltration response to kinetic energy.” Paper No. 86‐2106, Am. Soc. of Agric. Engrs., St. Joseph, Mich.
17.
Onofiok, O., and Singer, M. J. (1984). “Scanning electron microscope studies of soil surface crusts formed by simulated rainfall.” Soil Sci. Soc. Am. J., 48(5), 1137–1143.
18.
Romkens, M. J. M., Baumhardt, R. L., Parlange, M. B., Whisler, F. D., Parlange, J.‐Y., and Prasda, S. N. (1986). “Rain‐induced surface seals: Their effect on ponding and infiltration.” Annales Geophysicae, Gauthier‐Villars, Switzerland, 4, B, 4, 417–424.
19.
Shainberg, I., and Singer, M. J. (1988). “Drop impact energy‐soil exchangeable sodium percentage interactions in seal formation.” Soil Sci. Soc. Am. J., 52(5), 1449–1452.
20.
Thompson, A. L., and James, L. G. (1985). “Water droplet impact and its effect on infiltration.” Trans. Am. Soc. of Agric. Engrs., 28(5), 1506–1510, 1520.
21.
von Bernuth, R. D., and Gilley, J. R. (1984). “Sprinkler droplet size distribution estimation from single leg test data.” Trans. Am. Soc. of Agric. Engrs., 27(5), 1435–1441.
22.
Vories, E. D., von Bernuth, R. D., and Mickelson, R. H. (1987). “Simulating sprinkler performance in wind.” J. Irrig. and Drain. Engrg., 113(1), 119–130.
23.
Wobus, H. B., Murray, F. W., and Koenig, L. R. (1971). “Calculation of the terminal velocity of water drops.” J. Applied Meteorology, 10(3), 751–754.

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Published In

Go to Journal of Irrigation and Drainage Engineering
Journal of Irrigation and Drainage Engineering
Volume 119Issue 1January 1993
Pages: 157 - 169

History

Received: May 19, 1992
Published online: Jan 1, 1993
Published in print: Jan 1993

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Authors

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Wen‐Jaur Chang
Assoc. Prof., Dept. of Natural Resource Conservation, Nat. Ping Tung Institute of Technology, Ping Tung 90002. Taiwan, R.O.C.
David J. Hills
Prof. and Chair, Dept. of Agric. Engrg., Univ. of California, Davis, CA 95616

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