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Development Of A Numerical Model For Bridge-vehicle Interaction And Human Response To Traffic-induced Vibration

机译:桥梁—车辆相互作用及人为交通振动响应数值模型的建立

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The perceptible vibration of composite steel girder bridges under live loads is an important design consideration in today's bridges, which have longer spans and lighter decks than older bridges, and have with limited damping. Although, in accordance with the bridge design codes, the strength design and the deflection control of these bridges are covered fairly well, vehicle movement on the bridge may still cause vibrations that are too strong from the viewpoint of pedestrians. This investigation presents a comprehensive numerical model for studying bridge-vehicle interaction and the resultant perceptible vibration. 3D finite element models are developed for trucks, road surface and the composite girder bridge itself. Truck parameters include the body, the suspension and the tires. The bridge is treated as a 3D composite steel girder bridge on a simply-supported span. A parametric study is performed to identify the effect of various parameters on the vibration of the bridge, such as vehicle speed, neoprene stiffness, the effect of the aspect ratio (ratio of height to length) of steel girders, vehicle type, continuity of the deck slab on top of the pier and the initial bounce of the vehicle due to road surface roughness. The results have been expressed in the form of human perceptibility curves (graphs of perceptible vibration acceleration versus vibration frequency). This study finds that the bridge response is significantly influenced by the vehicle speed, stiffness of the elastomeric pad, continuity of the RC deck slab at pier and the ratio of vehicle weight to total weight of the superstructure, especially for values greater than 10%. In order to validate the proposed interaction model, dynamic field tests were performed on a simple span composite steel girder bridge, located downstream of Karkheh River Dam in Iran, which has significant vibrations under moving truckloads. The results show that the inclusion of features such as increasing the aspect ratio of steel girders and decreasing the number of expansion joints of the RC slab in the design has major effects on the reduction of perceptible vibration.
机译:在当今荷载作用下,复合钢梁桥的可感知振动是重要的设计考虑因素,与旧式桥梁相比,跨度更长,桥面更轻且阻尼有限。尽管按照桥梁设计规范,这些桥梁的强度设计和挠度控制都得到了很好的覆盖,但是从行人的角度来看,车辆在桥梁上的运动仍然可能会产生过强的振动。这项研究提出了一个综合的数值模型,用于研究桥梁与车辆的相互作用以及由此产生的可察觉的振动。为卡车,路面和复合梁桥本身开发了3D有限元模型。卡车参数包括车身,悬架和轮胎。该桥在简单支撑的跨度上被视为3D复合钢梁桥。进行参数研究以确定各种参数对桥梁振动的影响,例如车速,氯丁橡胶刚度,钢梁的纵横比(高长比),车型,桥的连续性的影响。码头顶部的桥面板,以及由于路面不平整而使车辆最初反弹的现象。结果以人类感知曲线的形式表示(感知振动加速度与振动频率的关系图)。这项研究发现,桥梁的响应受车速,弹性垫的刚度,墩台的RC甲板平板的连续性以及车重与上层建筑总重量之比的影响很大,特别是对于大于10%的值。为了验证所提出的相互作用模型,对位于伊朗卡尔赫河大坝下游的简单跨度复合钢梁桥进行了动态现场测试,该卡车在移动的卡车荷载下会产生明显的振动。结果表明,设计中包括增加钢梁的长宽比和减少RC板的伸缩缝数量等特征,对减小可察觉的振动有重大影响。

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