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Identification of aeroelastic forces and static drag coefficients of a twin cable bridge stay from full-scale ambient vibration measurements

机译:通过全尺寸环境振动测量确定双索桥的气动弹力和静阻系数

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摘要

Despite much research in recent years, large amplitude vibrations of inclined cables continue to be of concern for cable-stayed bridges. Various excitation mechanisms have been suggested, including rain-wind excitation, dry inclined cable galloping, high reduced velocity vortex shedding and excitation from the deck and/or towers. Although there have been many observations of large cable vibrations on bridges, there are relatively few cases of direct full-scale cable vibration and wind measurements, and most research has been based on wind tunnel tests and theoretical modelling.This paper presents results from full-scale measurements on the special arrangement of twin cables adopted for the Øresund Bridge. The monitoring system records wind and weather conditions, as well as accelerations of certain cables and a few locations on the deck and tower. Using the Eigenvalue Realization Algorithm (ERA), the damping and stiffness matrices are identified for different vibration modes of the cables, with sufficient accuracy to identify changes in the total effective damping and stiffness matrices due to the aeroelastic forces acting on the cables. The damping matrices identified from the full-scale measurements are compared with the theoretical damping matrices based on the quasi-steady theory, using three different sets of wind tunnel measurements of static force coefficients on similar shaped twin or single cables, with good agreement. The damping terms are found to be dependent on Reynolds number rather than reduced velocity, indicating that Reynolds number governs the aeroelastic effects in these conditions. There is a significant drop in the aerodynamic damping in the critical Reynolds number range, which is believed to be related to the large amplitude cable vibrations observed on some bridges in dry conditions.Finally, static drag coefficients are back-calculated from the full-scale vibration measurements, for first time, with reasonable agreement with direct wind tunnel measurements. The remaining discrepancies are believed to be due to the higher turbulence intensity on site than in the wind tunnel.
机译:尽管近年来进行了许多研究,但斜拉桥的倾斜电缆的大振幅振动仍然是令人关注的问题。已经提出了各种激励机制,包括雨风激励,干斜电缆疾驰,高减速涡旋脱落以及来自甲板和/或塔架的激励。尽管在桥梁上有许多关于大型电缆振动的观察,但是直接进行全尺寸电缆振动和风的测量的情况相对较少,并且大多数研究都是基于风洞测试和理论建模的。 Øresund桥采用双缆特殊布置的比例尺测量。监控系统记录风和天气情况,以及某些电缆的加速度以及甲板和塔架上一些位置的加速度。使用特征值实现算法(ERA),可以识别电缆的不同振动模式的阻尼和刚度矩阵,并具有足够的精度来识别由于作用在电缆上的气弹力而导致的总有效阻尼和刚度矩阵的变化。将在满量程测量中确定的阻尼矩阵与基于准稳态理论的理论阻尼矩阵进行了比较,使用了三组不同形状的双绞线或单根电缆上的静力系数的风洞测量值,具有很好的一致性。发现阻尼项取决于雷诺数而不是减小的速度,这表明在这些条件下雷诺数决定了空气弹性效应。空气动力学阻尼在关键的雷诺数范围内显着下降,这被认为与干燥条件下在某些桥梁上观察到的大振幅电缆振动有关。最后,静态阻力系数是从满量程反向计算的首次进行振动测量,并与直接风洞测量达成合理协议。其余的差异被认为是由于现场湍流强度高于风洞引起的。

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