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Dynamic Effects of Turbulent Crosswind on the Serviceability State of Vibrations of a Slender Arch Bridge Including Wind-Vehicle-Bridge Interaction

机译:湍流侧风对包括风-车-桥相互作用在内的细长拱桥振动有效状态的动态影响

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摘要

The use of high-performance materials in bridges is leading to structures that are more susceptible to wind- and traffic-induced vibrations due to the reduction in the weight and the increment of the slenderness in the deck. Bridges can experience considerable vibration due to both moving vehicles and wind actions that affect the comfort of the bridge users and the driving safety. This work explored the driving safety and comfort in a very slender arch bridge under turbulent wind and vehicle actions, as well as the comfort of pedestrians. A fully coupled wind–vehicle–bridge interaction model based on the direct integration of the system of dynamics was developed. In this model, the turbulent crosswind is represented by means of aerodynamic forces acting on the vehicle and the bridge. The vehicle is modeled as a multibody system that interacts with the bridge by means of moving contacts that also simulate road-surface irregularities. A user element is presented with generality and implemented using a general-purpose finite-element software package to incorporate the aeroelastic components of the wind forces, which allows modeling and solving of the wind–vehicle–bridge interaction in the time domain without the need for using the modal superposition technique. An extensive computational analysis program is performed on the basis of a wide range of turbulent crosswind speeds. The results show that bridge vibration is significantly affected by the crosswind in terms of peak acceleration and frequency content when the crosswind intensity is significant. The crosswind has more effect on the ride comfort of the vehicle in the lateral direction and, consequently, on its safety in terms of overturning accidents.
机译:由于桥架的重量减少和甲板的细长度增加,因此在桥梁中使用高性能材料会导致结构更易于受到风和交通引起的振动的影响。由于行驶中的车辆和风力会影响桥梁使用者的舒适度和行车安全,桥梁可能会遭受相当大的振动。这项工作探索了在风和车辆作用下非常细长的拱桥中的行车安全性和舒适性以及行人的舒适性。建立了基于动力学系统直接集成的风-车-桥完全耦合模型。在该模型中,湍流侧风通过作用在车辆和桥梁上的空气动力来表示。车辆被建模为一个多体系统,该系统通过移动触点与桥梁相互作用,该触点还模拟路面不规则性。用户元素具有通用性,并使用通用有限元软件包来实现,以整合风力的气动弹性成分,从而无需时空即可在时域内对风-车-桥相互作用进行建模和求解。使用模态叠加技术广泛的计算分析程序是根据广泛的湍流侧风速度执行的。结果表明,当侧风强度很大时,在峰值加速度和频率含量方面,桥梁振动受侧风的影响很大。侧风对车辆在横向方向上的乘坐舒适性具有更大的影响,因此在倾覆事故方面对车辆的安全性具有更大的影响。

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