带退波壁的复合垂直防波堤过顶后流动试验分析:水动力参数映射

IF 4.5 2区 工程技术 Q1 ENGINEERING, CIVIL
Matteo Centorami , Alessandro Romano , Claudia Cecioni , Giorgio Bellotti
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引用次数: 0

摘要

在深水条件下,为了提高复合垂直防波堤的水动力性能,通常采用退波墙。墙后退对波-结构相互作用的动力学特性有显著的影响,使得现有的设计准则对这种结构并不适用。以往的实验结果表明,这些过程是由发生在沉箱干向海边缘和波壁之间上部结构上的过顶后流动特征所驱动的复杂流体动力学所控制的。本文进行了一项新的二维试验,探讨了带退波墙的复合垂直防波堤过顶后流的水动力特性。为了提高对这一现象的整体认识,我们根据波浪特征和结构参数对这些水流进行了分析,并将其分为三种不同的类型,即:溃坝(DB)、冲坝(PDB)和锤击(HF)。然后,研究了各事件类型的特征随波壁后退位置的变化规律。为此目的,一种先进的图像聚类分析技术已被应用于可视化过程和估计那些难以用直接测量技术测量的数量(例如,空气含量)。此外,还测量了壁面上的波浪载荷和下降压力,从而可以探索不同的流动类型、壁面后退和曝气水平如何影响冲击载荷和流动动力学。对过顶后流动动力学的详细分析,结合对作用于波壁的力的测量,可以获得基于流动分类和几何尺寸的综合参数图,这有助于开发此类结构的实用设计工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental analysis of post-overtopping flows on composite vertical breakwaters with retreated wave walls: Mapping of the hydrodynamic parameters
Retreated wave walls are often used to improve the hydrodynamic performance of composite vertical breakwaters placed in relatively deep-water conditions. The wall retreat changes significantly the dynamics of wave-structure interaction, making the current design criteria not adequate for such structures. Previous experimental findings highlight that these processes are governed by the complex hydrodynamics driven by the characteristics of post-overtopping flows occurring on the superstructure between the seaward edge of the caisson trunk and the wave wall. In this article a new 2D experimental campaign has been carried out to explore the hydrodynamics of post-overtopping flows on composite vertical breakwaters with retreated wave wall. To improve the overall understanding of the phenomena, these flows have been analyzed and classified into three distinct types, based on wave characteristics and structural parameters, namely: Dam break (DB), Plunging-Dam break (PDB), and Hammer-Fist (HF). Then, the characteristics of each event type have been studied as a function of the wave wall retreat position. To this end, an advanced image-clustering analysis technique has been applied to visualize the process and estimate those quantities which are difficult to measure with direct measurement techniques (e.g., air content). Moreover, wave-induced loads on the wall and downfall pressures have been measured, allowing to explore how different flow types, wall retreats, and aeration levels could affect impact loads and flow dynamics. The detailed analysis of the post-overtopping flows dynamics, combined with the measurements of the forces acting on the wave wall, allowed to obtain a comprehensive parameters map, based on the flows classification and geometrical dimensions, which contributes to the development of practical design tools for such structures.
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来源期刊
Coastal Engineering
Coastal Engineering 工程技术-工程:大洋
CiteScore
9.20
自引率
13.60%
发文量
0
审稿时长
3.5 months
期刊介绍: Coastal Engineering is an international medium for coastal engineers and scientists. Combining practical applications with modern technological and scientific approaches, such as mathematical and numerical modelling, laboratory and field observations and experiments, it publishes fundamental studies as well as case studies on the following aspects of coastal, harbour and offshore engineering: waves, currents and sediment transport; coastal, estuarine and offshore morphology; technical and functional design of coastal and harbour structures; morphological and environmental impact of coastal, harbour and offshore structures.
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