杨志莹, 祝兵, 黄博, 张跃志, 殷瑞涛. 海啸作用下跨海桥梁上部结构流-固耦合数值研究[J]. 工程力学, 2024, 41(9): 111-122. DOI: 10.6052/j.issn.1000-4750.2022.07.0635
引用本文: 杨志莹, 祝兵, 黄博, 张跃志, 殷瑞涛. 海啸作用下跨海桥梁上部结构流-固耦合数值研究[J]. 工程力学, 2024, 41(9): 111-122. DOI: 10.6052/j.issn.1000-4750.2022.07.0635
YANG Zhi-ying, ZHU Bing, HUANG Bo, ZHANG Yue-zhi, YIN Rui-tao. NUMERICAL STUDY ON FLUID-STRUCTURE INTERACTION AT SUPERSTRUCTURES OF COASTAL BRIDGE UNDER TSUNAMI ACTION[J]. Engineering Mechanics, 2024, 41(9): 111-122. DOI: 10.6052/j.issn.1000-4750.2022.07.0635
Citation: YANG Zhi-ying, ZHU Bing, HUANG Bo, ZHANG Yue-zhi, YIN Rui-tao. NUMERICAL STUDY ON FLUID-STRUCTURE INTERACTION AT SUPERSTRUCTURES OF COASTAL BRIDGE UNDER TSUNAMI ACTION[J]. Engineering Mechanics, 2024, 41(9): 111-122. DOI: 10.6052/j.issn.1000-4750.2022.07.0635

海啸作用下跨海桥梁上部结构流-固耦合数值研究

NUMERICAL STUDY ON FLUID-STRUCTURE INTERACTION AT SUPERSTRUCTURES OF COASTAL BRIDGE UNDER TSUNAMI ACTION

  • 摘要: 海啸是威胁跨海桥梁安全的主要灾害之一,深入研究海啸与桥梁上部结构耦合作用过程,明确桥梁上部结构波浪力以及桥梁支座受力状态对跨海桥梁安全具有重要意义。该文采用开源软件OpenFOAM建立二维数值水槽,以溃坝波模拟海啸,通过求解RANS方程来获取流体运动,并采用k-ε湍流模型解决RANS方程的封闭性问题,以弹簧-质量-阻尼体系模拟桥梁上部结构运动体系,通过流体与质量-弹簧-阻尼体系间实时数据传递,模拟海啸与桥梁上部结构之间的耦合效应。并利用溃坝波解析解及已有的试验数据验证了数值模型的可靠性。在此基础上,通过对比在水平方向采用刚性约束或不同刚度的弹性约束时上部结构的波浪力,研究了流-固耦合效应以及约束刚度对桥梁上部结构波浪力的影响,同时分析了在海啸作用过程中桥梁各支座的受力状态。结果表明:该文建立的数值模型能够准确地模拟海啸波浪与结构耦合作用过程;考虑流固耦合效应后,上部结构受到的最大波浪力明显减小,水平力最大值减小16.8%~21.0%,竖向力最大值减小15.5%~19.5%;相比于上部结构水平波浪力,支座承受的水平力波动更明显且其最大值达到上部结构水平力的1.25倍;迎浪侧支座在不同时刻存在拉和压两种不同工作状态,其最大拉力达到上部结构竖向波浪力最大值的90%以上;背浪侧支座仅承受压力,其最大压力约为迎浪侧支座最大压力的1.11倍~1.55倍。

     

    Abstract: Tsunami is one of the main disasters threatening the safety of coastal bridges. It is of great significance for the coastal bridges to dig into the superstructure-tsunami interaction process, and to study tsunami wave-induced forces on the bridge superstructure and on bridge bearings. In present study, a 2-D numerical wave tank was developed by using the open source software OpenFOAM. The dam-breaking wave was adopted to simulate tsunami waves. The RANS (Reynolds-averaged Navier–Stokes) equations combined with the k-ɛ turbulence model were utilized to describe the mean flow motion. The spring-mass-damper system was utilized to numerically simulate the moving system of the bridge superstructure. The coupling effect between tsunami and bridge superstructure was considered through the real-time data transmission between fluid and spring-mass-damping system. Then the numerical model was verified by the theoretical formulas of dam-breaking wave and the experimental measurements in the pertinent literatures. With that, the influence of the fluid-structure interaction effect and the lateral restraining stiffness on wave force were analyzed. Meanwhile, the stress state of the bridge bearings during tsunami action process was explored. The results indicate that: the numerical model developed is capable of capturing the wave-structure interaction process; after considering the fluid-structure interaction effect, the maximum wave forces on the superstructure decreases significantly. For the horizontal force, the maximum value decreases nearly 16.8%~21.0%, and maximum vertical force decreases nearly 15.5%~19.5%; compared with the horizontal force on the bridge superstructure, the horizontal bearing force fluctuates more obviously and its maximum value reaches 1.25 times of the horizontal force on the superstructure; the bearing at upstream side experiences both tensile and compressive state, and its maximum tensile force exceeds 90% of the maximum vertical force on the superstructure; the bearing at downstream side only experiences compressive state, and its maximum compressive force is about 1.11~1.55 times of the maximum compressive force on the upstream bearing.

     

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