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Dependence of Total Longshore Sediment Transport Rates on Incident Wave Parameters and Breaker Type

机译:总龙岸沉积物运输率对事件波参数和断路器类型的依赖性

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摘要

Experiments were conducted in the Large-scale Sediment Transport Facility (LSTF) at the U.S. Army Engineer Research and Development Center to investigate the importance of wave height, period, and breaker type (spilling and plunging breakers) on total rate of longshore sediment transport (LST) and the cross-shore distribution of LST.Estimates computed by the CERC formula and Kamphius were compared to the accurately measured total LST rates. Several K-values were used with the CERC formula, including the recommended value of 0.39 and calculated values by Kamphuis and Readshaw, Ozhan, Bailard, and Del Valle et al. The recommended K-value and most of the calculated K-values overpredicted the measured total LST rates, but methods that included parameters to indicate breaker type gave good estimates. The Kamphuis and Readshaw equation, in which K is a function of surf similarity parameter, gave consistent estimates with measurements. The Kamphuis equation, which includes wave period and beach slope that in turn influences wave breaking, also compared well with the measurements. Additionally, the CERC formula has been used successfully if K is calibrated, and the formula gave excellent results if K was calibrated with measured data and applied to similar breaker types. The findings indicate that total LST rate is strongly influenced by breaker type.The cross-shore distribution of LST indicated three distinct zones of transport: the incipient breaker zone, the inner surf zone, and the swash zone. Transport in the incipient breaker zone was influenced by breaker type. Transport in the inner surf zone indicated that wave height was the dominating factor and independent of wave period. Swash zone transport, which accounted for a significant percentage of the total transport, showed a dependence on wave height, period, and beach slope.
机译:在美国陆军工程师研发中心的大型沉积物运输设施(LSTF)中进行了实验,以研究波浪高,时期和断路器类型(溢出和漏洞)对龙岸沉积物运输总速率的重要性( LST)和LST的交叉岸分布。通过CERC公式和KAMphius计算的istmate与精确测量的总LST速率进行了比较。几个k值与CERC公式一起使用,包括Kamphuis和Readshaw,Ozhan,Bailard和Del Valle等人的建议值0.39和计算值。推荐的k值和大多数计算的k值过于测量的总LST速率,但是包括参数以指示断路器类型的方法给出了良好的估计。 Kamphuis和Readshaw方程,其中K是冲浪相似度参数的函数,对测量产生了一致的估计。包括波浪周期和海滩斜率的卡蒙斯方程,反过来影响波浪打破,也与测量相比。此外,如果k被校准,则CERC公式已成功使用,并且如果通过测量数据校准k并应用于类似的断路器类型,则公式给出了优异的结果。研究结果表明,总LST速率受断路器类型的强烈影响。LST的交叉岸分布指示了三个不同的运输区:初期断路器区,内部冲浪区和斜扫区域。初期断路区的运输受破碎机的影响。内部冲浪区的运输表明波浪高度是主导因子和无关的波段。摩擦区运输,占总运输的大量百分比,显示了对波浪高度,时期和海滩坡的依赖。

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