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Mitigation of Pedestrian-induced Vibrations in Suspension Footbridges via Multiple Tuned Mass Dampers

机译:通过多重调谐质量阻尼器减轻悬架天桥中行人引起的振动

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摘要

The dynamic response of suspension footbridges to pedestrian-induced excitations and its passive mitigation, via multiple tuned mass dampers (TMDs), are investigated. First, the nonlinear equations of motion are obtained assuming finite planar motions of the suspension bridge. A suitable approximate version of the equations of motion is shown to be in agreement with existing theories and its linearization is then employed in the structural dynamics analyses. A Galerkin discretization is exploited to calculate both the free and forced dynamic response towards the design of the vibration control system. First, the leading characteristics of the bridge dynamic response are outlined. Resonant vibrations induced by the passage of pedestrians are shown to be effectively reduced using viscoelastic TMDs. As the frequencies of the lowest two modes in suspension footbridges can be very close in the proximity of the crossover phenomenon, three different design scenarios are considered: below, near and above the crossover. In particular, the influence of these scenarios on the passive control architecture is investigated.
机译:通过多重调谐质量阻尼器(TMD),研究了悬吊人行天桥对行人诱发的激励的动态响应及其被动缓解。首先,假设悬索桥的平面运动有限,则获得非线性运动方程。所示的运动方程的合适近似形式与现有理论一致,然后将其线性化用于结构动力学分析。利用Galerkin离散化来计算针对振动控制系统设计的自由动力和强迫动力响应。首先,概述了桥梁动力响应的主要特征。通过使用粘弹性TMD,可以有效地减少由行人经过引起的共振。由于悬架人行桥中最低的两种模式的频率在交叉现象附近可能非常接近,因此考虑了三种不同的设计方案:交叉下面,附近和上方。特别是,研究了这些方案对被动控制体系结构的影响。

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