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Trajectories of saltating sand particles behind a porous fence SCIE SCOPUS

Title
Trajectories of saltating sand particles behind a porous fence
Authors
Zhang, NLee, SJChen, TG
Date Issued
2015-01-01
Publisher
ELSEVIER SCIENCE BV
Abstract
Trajectories of aeolian sand particles behind a porous wind fence embedded in a simulated atmospheric boundary layer were visualized experimentally, to investigate the shelter effect of the fence on sand saltation. Two sand samples, one collected from a beach (d = 250 mu m) and the other from a desert (d = 100 mu m), were tested in comparison with the previous studies of a 'no-fence' case. A wind fence (epsilon = 38.5%) was installed on a flat sand bed filled with each sand sample. A high-speed photography technique and the particle tracking velocimetry (PTV) method were employed to reconstruct the trajectories of particles saltating behind the fence. The collision processes of these sand particles were analyzed, momentum and kinetic energy transfer between saltating particles and ground surface were also investigated. In the wake region, probability density distributions of the impact velocities agree well with the pattern of no-fence case, and can be explained by a log-normal law. The horizontal component of impact velocity for the beach sand is decreased by about 54%, and about 76% for the desert sand. Vertical restitution coefficients of bouncing particles are smaller than 1.0 due to the presence of the wind fence. The saltating particles lose a large proportion of their energy during the collision process. These results illustrate that the porous wind fence effectively abates the further evolution of saltating sand particles. (C) 2014 Elsevier B.V. All rights reserved.
Keywords
Porous fence; Sand saltation; Trajectory; Collision process; PTV; ATMOSPHERIC BOUNDARY-LAYER; AEOLIAN SALTATION; COLLISION PROCESS; MEAN VELOCITY; WIND-EROSION; LIFT-OFF; SIMULATION; TRACKING; PROBABILITY; SHELTER
URI
https://oasis.postech.ac.kr/handle/2014.oak/13798
DOI
10.1016/J.GEOMORPH.2014.10.028
ISSN
0169-555X
Article Type
Article
Citation
GEOMORPHOLOGY, vol. 228, page. 608 - 616, 2015-01-01
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