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SWAN-Mud: Engineering Model for Mud-Induced Wave Damping

机译:SWAN-Mud:泥浆诱发的波浪阻尼的工程模型

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摘要

This paper describes the implementation of a new dispersion relation and energy-dissipation equation obtained from a viscous two-layer model schematization in the state-of-the-art wave forecasting model SWAN to simulate wave damping in coastal areas by fluid mud deposits. This new dispersion relation is derived for a nonviscous, nonhydrostatic upper layer and a viscous, hydrostatic lower layer, covering most conditions encountered in nature. An algorithm is developed for a robust numerical solution of this new implicit dispersion relation through proper starting values in the iteration procedure. The implementation is tested against a series of analytical solutions and three schematic test cases. Next, four dispersion relations published in the literature are evaluated and compared with the new dispersion relation. The solution of the dispersion relations forms a multidimensional space. Comparison of the various model solutions through one-dimensional graphs can therefore become quite misleading, as shown in the discussion of a two-dimensional representation of the solution space, explaining for instance the variation in ambient conditions at which maximum wave damping is to be expected. The various models have been developed for a variety of conditions, such as shallow and deep water and shallow and thick mud layers; the various models agree well in their domain of applicability, but they show significant deviations when used outside their domain. Because the ambient and mud conditions may vary considerable in space and time at a particular site, the use of the new model is advocated because it covers most water depths and fluid mud thicknesses encountered in nature. The strength of the new SWAN-mud model lies in its large-scale applicability, assessing the two-dimensional evolution of wave fields in coastal areas. Therefore, the new implementation is evaluated with respect to the behavior of waves on a sloping seabed, representing real-world coasts. In all cases, the new SWAN-mud model behaves satisfactorily; a critical remaining issue, though, is the assessment of the relevant fluid mud parameters.
机译:本文介绍了在最新的波浪预报模型SWAN中从粘性的两层模型示意图中获得的新的色散关系和能量耗散方程的实现,以模拟流体泥浆沉积对沿海地区的波浪阻尼。这种新的色散关系是针对非粘性,非静液压的上层和粘性,静液压的下层而得出的,涵盖了自然界中遇到的大多数情况。通过在迭代过程中通过适当的起始值,为该新的隐式色散关系的鲁棒数值解开发了一种算法。针对一系列分析解决方案和三个示意性测试案例对实现进行了测试。接下来,评估文献中公开的四个色散关系,并将其与新色散关系进行比较。色散关系的解形成一个多维空间。因此,通过一维图对各种模型解进行比较会产生相当大的误导性,如对解空间的二维表示的讨论所示,例如,解释了在预期最大波衰减的环境条件下的变化。 。已经针对各种条件开发了各种模型,例如浅层和深层水以及浅层和浓稠的泥层;各种模型在其适用范围内都很好地达成共识,但在其范围外使用时,它们显示出明显的偏差。由于特定地点的环境和泥浆条件在空间和时间上可能会发生相当大的变化,因此提倡使用新模型,因为它涵盖了自然界中遇到的大多数水深和流体泥浆厚度。新的SWAN-mud模型的优势在于其大规模的适用性,评估了沿海地区波场的二维演化。因此,相对于代表真实世界海岸的倾斜海床上的波浪行为,评估了新的实施方案。在所有情况下,新的SWAN-mud模型都可以令人满意地运行。但是,剩下的一个关键问题是对相关泥浆参数的评估。

著录项

  • 来源
    《Journal of Hydraulic Engineering》 |2011年第9期|p.959-975|共17页
  • 作者单位

    Delft Univ. of Technology, Environmental Fluid Mechanics, PO Box 5048, 2600 GA Delft, Netherlands;

    Delft University of Technology, Environmental Fluid Mechanics, POBox 5048, 2600 GA Delft, Netherlands;

    Delft Univ. of Technology, Environmental Fluid Mechanics, PO Box 5048, 2600 GA Delft, Netherlands;

    Deltares—Delft Hydraulics, Netherlands;

    Delft Univ. of Technology, Environmental Fluid Mechanics, PO Box 5048, 2600 GA Delft, Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    wave attenuation; mud; numerical model.;

    机译:波衰减泥;数值模型。;

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