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Coupled Dynamic Analysis of the Vehicle-Bridge-Wind-Wave System

机译:车桥风浪系统耦合动力分析

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Slender bridges, often built in harsh coastal environments, may experience dynamic loadings from strong winds and high waves. Busy traffic is expected during normal operating conditions and during evacuation events before extreme weather or emergency-related conditions. Understanding the dynamics of the complex vehicle-bridge-wind-wave (VBWW) system is critical to the safety of both vehicles and bridges. For the present study, an analytical model was developed to evaluate the dynamic performance of the coupled VBWW system. First, the bridge was discretized using the FEM, and vehicles were modeled as mass-spring-damper systems to build the equations for the dynamic equilibrium. Then, the time histories of the wind and wave around the bridge site were simulated as stochastic random processes and generated using the spectral representation method. The dynamic system integrated the conventional buffeting analysis for the wind-bridge interaction, the quasi-static analysis for the wind-vehicle interaction, and the dynamic interaction between the moving vehicles and the bridge according to the geometric and mechanical relationships between the vehicle tires and the bridge deck. In addition, the interaction between the wave and bridge group-pile foundation was included in the system using the Morrison equation. Finally, for demonstration purposes, the dynamic responses of a coastal slender cable-stayed bridge under different vehicle-, wind-, and wave-loading scenarios were analyzed. The case study results indicated that the lateral vibration of the prototype bridge can increase by 13.6-82.4% for different components of the bridge under different lateral incident wave scenarios with varied wave heights and frequencies. The coupled VBWW results also indicated that wind load was the predominant dynamic response of both the vehicle and bridge with slight loading effects from the waves.
机译:细长的桥梁通常建在严酷的沿海环境中,可能会受到强风和高浪的动态载荷。在正常操作条件下以及在极端天气或紧急情况之前的疏散事件中,预计会有繁忙的交通。了解复杂的车桥风波(VBWW)系统的动力学特性对于车辆和桥梁的安全都是至关重要的。对于本研究,开发了一个分析模型来评估耦合VBWW系统的动态性能。首先,使用FEM对桥梁进行离散化,然后将车辆建模为质量弹簧-阻尼器系统,以建立动态平衡方程。然后,以随机随机过程模拟桥梁现场周围风浪的时间历史,并使用频谱表示法生成。该动力系统结合了传统的风车相互作用的抖振分析,风车相互作用的准静态分析以及根据车辆轮胎与轮胎之间的几何和机械关系的动态车辆与桥梁之间的动态相互作用。桥面甲板。此外,使用Morrison方程将波浪与桥梁群桩基础之间的相互作用包括在系统中。最后,出于演示目的,分析了沿海细长斜拉桥在不同车辆,风荷载和波浪荷载情况下的动力响应。案例研究结果表明,在波高和频率变化的情况下,不同侧向入射波情况下,桥梁的不同组成部分,原型桥梁的横向振动可以增加13.6-82.4%。 VBWW的耦合结果还表明,风荷载是车辆和桥梁的主要动力响应,波浪产生的荷载效应很小。

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