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Average sand particle trajectory examined by the Raindrop Detachment and Wind‐driven Transport (RD‐WDT) process
Authors:G Erpul  D Gabriels  W M Cornelis  H Samray  T Guzelordu
Institution:1. Department of Soil Science, Faculty of Agriculture, University of Ankara, 06110 Diskapi‐Ankara, Turkey;2. Department of Soil Management and Soil Care, Ghent University, Coupure Links 653, B 9000 Ghent, Belgium
Abstract:Recent studies of soil loss by the integrated action of raindrop impact and wind transport have demonstrated the significance of this mechanism. This paper presents data obtained during wind‐tunnel experiments examining the ‘Raindrop Detachment and Wind‐driven Transport’ (RD‐WDT) process to investigate average sand particle trajectory and the spatial extent at which the process operates. In the experimental design, at the same time as the horizontal wind velocities of 6·4, 10, and 12 m s–1 passed through the tunnel, rainfall was simulated falling on very well sorted dune sand. The aspect and slope of the sand bed was varied to reproduce both windward (Ww) and leeward (Lw) slopes of 4º and 9º with respect to the prevailing wind direction. The average sand particle trajectories by the RD‐WDT process (equation image ) were estimated by a mass‐distribution function, which was integrated over a 7‐m uniform slope segment. The results showed that equation image depended statistically upon the wind shear velocity (u*), and the effect of the slope gradient (θ) was insignificant on equation image . This was different from that of the windless rain process (equation image ), ‘Raindrop Detachment and Splash‐driven Transport’ (RD‐ST), the spatial range of which relies strongly on θ. Additionally, equation image was approximately 2·27 ± 2·2 times greater than the average path of a typical saltating sand particle of the rainless wind (equation image ), ‘Wind Erosion Saltation Transport’ (WE‐ST). Copyright © 2009 John Wiley & Sons, Ltd.
Keywords:sand particle trajectory  wind‐driven rain  rainsplash  saltation
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