Effect of backward-facing step heights in vegetation-step model on reducing the velocity of a tsunami inundation and increasing the energy dissipation efficiency

IF 2.5 3区 工程技术 Journal of Hydrodynamics Pub Date : 2024-11-15 DOI:10.1007/s42241-024-0064-0
Wen-xin Huai, Xiao-hua Zhang, Dan Li, Zhong-hua Yang, Yi-dan Ai
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Abstract

A coastal forest combined with a backward-facing step is an efficient facility to reduce tsunami damage to residential areas behind sea embankments. This study establishes a generalized model, and experimentally explores the water level changes upstream of the vegetation-step mitigation model as well as its energy dissipation effect under different initial Froude numbers, step heights, and vegetation conditions. The results show that the relative backwater rise increases with the growth of vegetation density, patch length and initial Froude number, representing a slowing down of the tsunami inundation. As for energy dissipation, it is mainly caused by the additional resistance of the vegetation and the hydraulic jump. And the vegetation condition not only affects the energy dissipation due to stem-scale turbulence within the patch, but also changes the hydraulic jump process of water falling from the step in cooperation with the step height. As a result, the energy dissipation efficiency always increases with the growth of vegetation density, vegetation patch length and step height. With the criterion that the energy dissipation efficiency and its growth rate can hardly change with vegetation parameters, this study innovatively defines the threshold slope and gives the principle of judging the most cost-effective vegetation conditions at different step heights. These results are expected to provide an important reference for the design of composite tsunami mitigation facilities.

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植被台阶模型中台阶后向高度对降低海啸淹没速度和提高能量耗散效率的影响
沿海森林与后向台阶相结合,是减少海啸对海堤后面居民区破坏的有效设施。本研究建立了广义模型,实验探讨了不同初始弗劳德数、台阶高度和植被条件下,植被-台阶缓解模型上游水位变化及其能量耗散效果。结果表明:随着植被密度、斑块长度和初始弗劳德数的增加,相对回水上升幅度增大,表明海啸淹没速度减缓;在消能方面,主要由植被附加阻力和水跃引起。植被条件不仅影响斑块内茎尺度湍流引起的能量耗散,而且还与台阶高度协同改变台阶落水的水力跳跃过程。结果表明,能量耗散效率随植被密度、植被斑块长度和台阶高度的增加而增加。本文创新性地定义了阈值坡度,根据植被参数对耗散效率及其生长速率的影响不大,给出了不同台阶高度下最经济的植被条件的判断原则。研究结果可为复合海啸减灾设施的设计提供重要参考。
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来源期刊
自引率
12.00%
发文量
2374
审稿时长
4.6 months
期刊介绍: Journal of Hydrodynamics is devoted to the publication of original theoretical, computational and experimental contributions to the all aspects of hydrodynamics. It covers advances in the naval architecture and ocean engineering, marine and ocean engineering, environmental engineering, water conservancy and hydropower engineering, energy exploration, chemical engineering, biological and biomedical engineering etc.
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