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Investigation of Sand Ripple Dynamics with Combined Particle Image and Tracking Velocimetry

沉淀 粒子图像测速 地质学 沉积物 涡流 涟漪 流速 泥沙输移 粒度 流量(数学) 测速 机械 地貌学 湍流 物理 热力学 电压 量子力学
作者
Donya P. Frank-Gilchrist,A. Penko,Joseph Calantoni
出处
期刊:Journal of Atmospheric and Oceanic Technology [American Meteorological Society]
卷期号:35 (10): 2019-2036 被引量:13
标识
DOI:10.1175/jtech-d-18-0054.1
摘要

Abstract Accurately assessing the response of sediments to oscillatory flows requires high-resolution fluid velocity and sediment transport measurements at the fluid–sediment interface. Fluid and sediment grain velocities were measured simultaneously with combined particle image and tracking velocimetry under oscillatory flows over movable sand ripples. Three high-speed cameras equipped with varying optical filters were used to distinguish between fluorescent fluid tracers and the grains, from which the fluid and grain velocities were determined, respectively. Individual grains were tracked during transport to determine velocities and trajectories. Sediment grains were first mobilized by a vortex impacting the bed during flow reversal and suspended into the water column just prior to vortex ejection from the ripple crest, similar to previous observations. During phases of maximum flow velocity, additional grains were mobilized by the shear stress and were subsequently suspended. The flow reversed and similar observations were made in the opposite direction. Consequently, four peaks in suspended sediment concentration were observed throughout the flow cycle, consistent with previous observations. However, some previous researchers attributed peaks in suspended sediment concentration occurring during phases of maximum flow velocity to sediment-laden vortices that were shed from adjacent ripples. The measured sediment grain velocities were of similar magnitude and phase to the near-bed fluid velocities when the grains were being advected with the flow. Measurements of suspended sediment concentration agreed well with semiempirical formulations having an average root-mean-square deviation of approximately 4 × 10 −5 m 3 m −3 . Predictions of settling velocity also compared well with the laboratory estimates, agreeing to within 90%.

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