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首页> 外文期刊>Journal of Geophysical Research, C. Oceans: JGR >Suspension and near-bed load sediment transport processes above a migrating, sand-rippled bed under shoaling waves
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Suspension and near-bed load sediment transport processes above a migrating, sand-rippled bed under shoaling waves

机译:在浅滩波的作用下,移动的,起波纹的沙床上方的悬浮物和近床物沉积物的输送过程

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The present study focuses on the fine-scale flow and sand transport processes above onshore migrating ripples below skewed surface gravity waves in the shoaling zone. A set of acoustic instruments was deployed in the shoaling region of the large-scale wave channel at Canal d'Investigacio i Experimatacio Maritima, Universitat Poltiêcnica de Catalunya, Barcelona, Spain, in order to provide high-resolution velocity and sediment concentration profiles with an acoustic concentration and velocity profiler (ACVP). Measurements are analyzed relative to the positions of the measured nonmoving sand bed and the interface separating the suspension from the near-bed load layer. This interface is detected here by the application of a novel acoustic bed echo detection method. Furthermore, the use of the dual-frequency inversion proposed in the work of Hurther et al. (2011) allows for the calculation of the sediment concentration profile across both the suspension and near-bed load layers. The sand bed was covered by quasi-two-dimensional suborbital ripples migrating onshore. As proposed by O'Donoghue et al. (2006), the occurrence of quasi-two-dimensional ripples is attributed to the fine-size sand of D50 = 250 sm used in the present study under full-scale forcing conditions. In order to determine the effect of shoaled wave skewness on the ripple vortex entrainment and sediment transport, the instantaneous and mean measurements of the flow, sediment concentration, and sediment flux along the ripple profile are discussed in terms of (1) the occurrence of ripple vortex entrainment on either side of the ripple crest; (2) the wave velocity phase lagging driven by the ripple vortex entrainment process and the turbulent bed friction effects in the wave boundary layer; (3) phase lagging between velocity and maximum concentration and sediment flux events; (4) the structure of bed friction and ripple-driven turbulence across the suspension and the near-bed load layers; and (5) the streaming components. The results on these aspects strongly support that the wave velocity skewness effect under shoaling waves is fairly similar to the one obtained in skewed oscillatory water tunnel flows. Furthermore, it is found that the onshore-oriented net bed load sediment transport is at the origin of the onshore ripple migration. This flux is roughly twice as much as the opposite offshore-oriented net suspension flux dominated by the ripple vortex entrainment processes.
机译:本研究的重点是在浅滩区偏斜地面重力波以下的陆上迁移波纹上方的细尺度流沙输送过程。在西班牙巴塞罗那的加泰罗尼亚波尔蒂纳理工大学的运河研究中心的大型波浪通道的浅滩区部署了一套声学仪器,以提供高分辨率的速度和沉积物浓度分布图,声学浓度和速度分析器(ACVP)。相对于所测量的不动砂床和将悬浮液与近床荷载层分开的界面的位置来分析测量结果。在此通过应用新颖的声波床回波检测方法来检测该界面。此外,在Hurther等人的工作中建议使用双频反转。 (2011年)允许计算悬浮液和近床荷载层的沉积物浓度曲线。沙床被陆上迁移的准二维亚轨道波纹所覆盖。如O'Donoghue等人提出的。 (2006年),准二维波纹的发生是由于在本研究中在全尺度强迫条件下使用的D50 = 250 sm的细粒砂。为了确定浅波偏斜对波纹涡旋夹带和泥沙输送的影响,讨论了沿波纹轮廓的流量,泥沙浓度和泥沙通量的瞬时和平均值测量,其计算方式如下:(1)波纹的发生波纹波峰两侧的涡旋夹带; (2)由波纹涡旋夹带过程和波边界层湍流床摩擦效应驱动的波速相位滞后; (3)速度与最大浓度和泥沙通量事件之间的相位滞后; (4)横跨悬架和近床载荷层的床摩擦和波纹驱动湍流的结构; (5)流媒体组件。这些方面的结果有力地证明了浅滩波作用下的波速偏斜效应与偏斜振荡水洞流中获得的波速偏斜效应十分相似。此外,还发现,以陆上为导向的净基床负荷输沙是陆上波纹迁移的起源。该通量大约是波纹涡流夹带过程所主导的相反的海上定向净悬浮通量的两倍。

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