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doi: 10.5281/zenodo.2840156 , 10.5281/zenodo.2664387 , 10.5281/zenodo.2672089 , 10.5281/zenodo.2830687 , 10.5281/zenodo.2837577 , 10.5281/zenodo.2840157 , 10.5281/zenodo.1337411 , 10.5281/zenodo.2665349 , 10.5281/zenodo.2662813 , 10.5281/zenodo.2672088 , 10.5281/zenodo.2812568 , 10.5281/zenodo.2824263 , 10.5281/zenodo.1337410 , 10.5281/zenodo.2662433 , 10.5281/zenodo.2837578 , 10.5281/zenodo.2862319 , 10.5281/zenodo.2665348 , 10.5281/zenodo.2664388 , 10.5281/zenodo.2814050 , 10.5281/zenodo.2830686 , 10.5281/zenodo.2828013 , 10.5281/zenodo.2662434 , 10.5281/zenodo.2862318 , 10.5281/zenodo.1094570 , 10.5281/zenodo.2666377 , 10.5281/zenodo.2662814 , 10.5281/zenodo.2661756 , 10.5281/zenodo.1094571 , 10.5281/zenodo.2661757 , 10.5281/zenodo.2825187 , 10.5281/zenodo.2666376 , 10.5281/zenodo.2828014 , 10.5281/zenodo.2812569 , 10.5281/zenodo.2814051 , 10.5281/zenodo.2663428 , 10.5281/zenodo.2825188 , 10.5281/zenodo.2824264 , 10.5281/zenodo.2663429
doi: 10.5281/zenodo.2840156 , 10.5281/zenodo.2664387 , 10.5281/zenodo.2672089 , 10.5281/zenodo.2830687 , 10.5281/zenodo.2837577 , 10.5281/zenodo.2840157 , 10.5281/zenodo.1337411 , 10.5281/zenodo.2665349 , 10.5281/zenodo.2662813 , 10.5281/zenodo.2672088 , 10.5281/zenodo.2812568 , 10.5281/zenodo.2824263 , 10.5281/zenodo.1337410 , 10.5281/zenodo.2662433 , 10.5281/zenodo.2837578 , 10.5281/zenodo.2862319 , 10.5281/zenodo.2665348 , 10.5281/zenodo.2664388 , 10.5281/zenodo.2814050 , 10.5281/zenodo.2830686 , 10.5281/zenodo.2828013 , 10.5281/zenodo.2662434 , 10.5281/zenodo.2862318 , 10.5281/zenodo.1094570 , 10.5281/zenodo.2666377 , 10.5281/zenodo.2662814 , 10.5281/zenodo.2661756 , 10.5281/zenodo.1094571 , 10.5281/zenodo.2661757 , 10.5281/zenodo.2825187 , 10.5281/zenodo.2666376 , 10.5281/zenodo.2828014 , 10.5281/zenodo.2812569 , 10.5281/zenodo.2814051 , 10.5281/zenodo.2663428 , 10.5281/zenodo.2825188 , 10.5281/zenodo.2824264 , 10.5281/zenodo.2663429
{"references": ["Laws J. (1941). Measurements of the fall velocity of water drops and raindrops. Transaction, American Geophysical Union 24: 452-460.", "Legu\u00e9dois S., Planchon O., Legout C. and Le Bissonnais Y., (2005). Splash Projection Distance for Aggregated Soils: Theory and Experiment, Soil Science Society of America Journal. 69: 30\u201337.", "Legout C., Legu\u00e9dois S., Le Bissonnais Y. (2005). Splash distance and size distributions for various soils. Geoderma 124 : 279\u2013292.", "Mouzai L., Bouhadef M., (2003). Water drop erosivity : Effects on soil splash, Journal of Hydraulic Research 41 ; 61-68.", "Mouzai L., Bouhadef M., (2011). Shear strength of compacted soil: effects on splash erosion by single water drops. Earth Surface Processes and Landforms 36: 87-96.", "Riezebos H. T. and Epema G.F., (1984). Drop shape and erosivity. Part I: experimental setup, theory, and measurements of drop shape. Earth Surface Processes and Landforms, Vol. 9, pp: 567-572.", "Riezebos H. T. and Epema G.F. (1985). Drop shape and erosivity. Part II: splash detachment, transport and erosivity indices. Earth Surface Processes and Landforms, Vol. 10, pp: 69-74.", "Savat, J. (1981). \"Work done by splash: laboratory experiments\", Earth Surface Processes and Landforms, vol. 6, pp: 275-283.", "Van Dijk A. I. J. M., Meesters A. G. C. A., Bruijnzeel, L. A. (2002). Exponential distribution theory and the interpretation of splash detachment and transport experiments. Soil Science Society of America Journal, 66, pp 1466\u20131474. \n[10]\tVan Dijk A.I.J.M., Bruijnzeel L.A. and Eisma E.H. (2003). A methodology to study rain splash and wash processes under natural rainfall. Hydrology processes, 17, 153-167."]}
The effects of down slope steepness on soil splash distribution under a water drop impact have been investigated in this study. The equipment used are the burette to simulate a water drop, a splash cup filled with sandy soil which forms the source area and a splash board to collect the ejected particles. The results found in this study have shown that the apparent mass increased with increasing downslope angle following a linear regression equation with high coefficient of determination. In the same way, the radial soil splash distribution over the distance has been analyzed statistically, and an exponential function was the best fit of the relationship for the different slope angles. The curves and the regressions equations validate the well known FSDF and extend the theory of Van Dijk.
soil detachment., water drop, Splash distribution, slope steepness
soil detachment., water drop, Splash distribution, slope steepness
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