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首页> 外文期刊>Continental Shelf Research: A Companion Journal to Deep-Sea Research and Progress in Oceanography >The role of alongshore flows on inner surf and swash zone hydrodynamics on a dissipative beach
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The role of alongshore flows on inner surf and swash zone hydrodynamics on a dissipative beach

机译:沿岸流动在耗散海滩内冲浪和旋转扫描区域流体动力学的作用

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Cross-shore and alongshore velocities were measured over five high tide cycles in the swash and inner surf zones of a dissipative beach (significant wave height between 0.5 and 1.65 m; water levels between 0 and 0.87 m) using acoustic and electromagnetic current meters. Measurements are used to determine the importance of alongshore motions relative to cross-shore motions for bed shear stress; a parameter required for many sediment transport formulations. Velocities and water depths are infragravity dominated with running average (5 min) cross-shore and alongshore velocities being of similar magnitude near 0.25 m/s. Significant coherence squared between cross-shore velocity and water depth is found in an infragravity frequency range (0.0078 Hz-0.024 Hz). A narrower infragravity frequency range (0.012 Hz-0.022 Hz) of significant coherence squared is found between alongshore velocity and water depth. Near bed velocity profiles at high spatial resolution indicate the mean profile of cross-shore or alongshore velocity for different relative cross-shore positions are nearly depth uniform, suggesting, on average, a well-mixed water column. Time-averaged onshore-directed depth-averaged velocities are nearly constant as a function of mean water depth, whereas time-averaged offshore-directed depth-averaged velocity magnitudes decrease with an increase in mean depth. In contrast, mean alongshore depth-averaged velocity magnitudes increase with depth regardless of the corresponding cross-shore motion and were always southerly-directed. These variations result from changes in breaking wave forcing location (i.e. relative crossshore position). Near instantaneous velocity profile data are used to estimate friction coefficients and the bed shear stress through the Law of the Wall assumption. Mean friction coefficients for alongshore flows are similar to those obtained for cross-shore flows and values of similar to 0.02 are appropriate for all phases of flow. Alongshore bed shear stresses are the dominant bed shear stress component for over 27% of the samples implying an enhancement of total bed shear stress through incorporation of alongshore motions. Neglecting these alongshore processes (even if alongshore uniform) in cross-shore sediment transport models will lead to errors in predicted sediment transport rates.
机译:横岸和沿岸速度在耗散海滩的旋转速度和内部冲浪区域中测量了五个高潮循环(在0.5%和1.65米之间的显着波浪高度为0.87米之间),使用声学和电磁电流计。测量用于确定沿海运动相对于床剪切应力的交叉运动的重要性;许多沉积物传输制剂所需的参数。速度和水深是基准,占据平均(5分钟)的交叉岸和沿岸速度在0.25米/秒附近的速度。在Intrabravity频率范围内(0.0078Hz-0.024 Hz)发现交叉岸速度和水深之间的显着连贯性。沿岸速度和水深之间发现了一个较窄的InfraGravity频率范围(0.012Hz-0.022 Hz)显着的相干方案。在高空间分辨率下靠近床速度剖面表示不同相对交叉岸位置的交叉岸或沿岸速度的平均轮廓几乎是深度均匀,平均均匀均匀,平均是混合水柱。随着平均水深的函数,时间平均的陆上定向的深度平均速度几乎是恒定的,而时平的离身深度平均速度大小随着平均深度的增加而降低。相反,平均速度平均速度大小随深度而增加,无论相应的跨岸动运动如何,都始终横向导向。这些变化是由断裂波迫使位置的变化(即相对十字位置)产生的。近瞬时速度曲线数据用于通过墙壁假设的规律来估计摩擦系数和床剪切应力。沿岸流动的平均摩擦系数类似于用于交叉岸流的那些,并且类似于0.02的值适用于流动的所有阶段。沿海床剪切应力是主要的床剪切应力分量,用于超过27%的样品,这暗示通过沿海动作加入总床剪切胁迫。忽视这些跨越过程(即使沿岸制服)在交叉岸沉积物运输模型中将导致预测沉积物运输速率的误差。

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