Experimental study on wave-induced loads and nonlinear effects for pier-pile group foundations of sea-crossing bridges: Wave slamming and suction effect

IF 4.2 2区 工程技术 Q1 ENGINEERING, CIVIL Coastal Engineering Pub Date : 2024-06-24 DOI:10.1016/j.coastaleng.2024.104567
Zhenguo Wang, Wei Wang, Wenliang Qiu, Meng Jiang
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Abstract

Strong nonlinear effects, such as wave slamming, suction effects, and wave overtopping, may be induced during wave-bridge interaction. However, an accurate understanding of these nonlinear effects is still insufficient. This study comprehensively investigates the wave slamming and suction effects on pier-pile group foundations of sea-crossing bridges in a 1:50 scale laboratory experiment. Random and regular waves with different strengths are generated based on wave conditions at the bridge site. Five water depths with a 2 cm spacing are designed to simulate varying pile cap clearances. Various pile arrangements are also set up to explore the influence of piles. Results show that wave slamming is low-aeration and is triggered mainly on the cap bottom wall, whereas the wave action on the vertical wall of the pile cap is quasi-static. The suction effect is generally recorded in the quasi-static phase of pressures and depends on the water exit process and the wave crest height. Moreover, the pressure oscillation after the impact phase results from the flow separation and rotation at structure corners. The wave slamming enhances with the increasing wave frequency when the impact area is constant, otherwise, it depends on the impact area. On the cap bottom wall, the wave slamming on inter-pile areas is enhanced, but the suction effect is less affected by pile arrangements. The increase in pile cap clearances reduces vertical forces but has less effect on horizontal forces. Additionally, a sustained increase in the wave crest height may reduce the slamming force. An empirical method for predicting wave forces is finally proposed based on the water entry theory and experimental findings. This work enhances the physical understanding of nonlinear effects during wave-bridge interaction and aims to support the design of substructures for sea-crossing bridges.

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跨海大桥墩桩群地基的波浪诱导荷载和非线性效应试验研究:海浪冲击和吸力效应
在波桥相互作用过程中,可能会产生强烈的非线性效应,如波浪撞击、吸力效应和波浪倾覆。然而,对这些非线性效应的准确理解仍然不足。本研究在 1:50 的实验室实验中全面研究了波浪对跨海大桥墩桩群地基的冲击和吸力效应。根据桥址的波浪条件,产生了不同强度的随机波和规则波。设计了五种水深,间距为 2 厘米,以模拟不同的桩帽间隙。此外,还设置了各种桩基布置,以探讨桩基的影响。结果表明,波浪撞击是低曝气的,主要是在桩帽底壁触发,而波浪对桩帽垂直壁的作用是准静态的。吸力效应一般记录在压力的准静态阶段,取决于出水过程和波峰高度。此外,冲击阶段后的压力振荡是由于结构角处的水流分离和旋转造成的。当撞击面积恒定时,波浪撞击随波浪频率的增加而增强,反之,则取决于撞击面积。在桩帽底壁上,桩间区域的波浪撞击增强,但吸力效应受桩基布置的影响较小。增加桩帽间隙可减少垂直力,但对水平力的影响较小。此外,波峰高度的持续增加也会减小撞击力。最后,根据进水理论和实验结果,提出了一种预测波浪力的经验方法。这项研究加深了人们对波浪与桥梁相互作用过程中非线性效应的物理理解,旨在为跨海大桥的下部结构设计提供支持。
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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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