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Motion-Based Design of Semi-active Tuned Mass Dampers to Control Pedestrian-Induced Vibrations in Footbridges Under Uncertainty Conditions

机译:基于运动的半主动调谐质量阻尼器设计,以控制不确定条件下的行人诱导的行人颤动

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Modern slender footbridges are sensitive to human-induced vibrations together with the uncertainty associated with the variation of the operational and environmental conditions. In order to overcome these limitations, semi-active damping devices have been widely employed due to their adequate balance between their effectiveness and their cost when they are used to control the pedestrian-induced vibrations in footbridges. Different design methods have been proposed to guarantee that the footbridges, controlled by these damping devices, meet the vibration serviceability limit state without compromising their budget. Among these proposals, the motion-based design method has shown a high performance when it has been implemented to design passive damping devices for footbridges. Herein, the motion-based design method under uncertainty conditions has been adapted and further implemented for the robust optimum design of semi-active tuned mass dampers when they are employed to control the pedestrian-induced vibrations in slender footbridges. According to this method, the design problem can be transformed into two sub-problems: (ⅰ) a multi-objective optimization sub-problem; and (ⅱ) a reliability analysis sub-problem. Thus, its main objective is to find the parameters of the semi-active damping device which guarantee an adequate comfort level without compromising its cost. In order to take into account the effect of the modification of the structural modal properties associated with the variation of the operational and environmental conditions, the compliance of the design requirements has been formulated via a reliability index. Therefore, a reliability analysis must be performed to assess the probability of failure associated with the abovementioned serviceability limit state.
机译:现代细长的纤维纱线与人类诱导的振动敏感,以及与操作和环境条件的变化相关的不确定性。为了克服这些限制,由于它们在使用它们之间的有效性和成本之间的充分平衡而被广泛采用半主动阻尼装置,这些装置用于控制人身人行道上的行人诱导的振动。已经提出了不同的设计方法来保证由这些阻尼装置控制的脚架,符合振动可靠性限制状态,而不会影响其预算。在这些提案中,运动基设计方法在实现以设计用于鞋桥的无源阻尼装置时,具有高性能。这里,在不确定条件下的基于运动的设计方法已经适用,并且在采用它们用于控制细长织物桥中的行人诱导的振动时,为半主动调谐质量阻尼器的鲁棒优化设计进行了调整和进一步实现。根据该方法,设计问题可以转化为两个子问题:(Ⅰ)多目标优化子问题; (Ⅱ)可靠性分析子问题。因此,其主要目的是找到半主动阻尼装置的参数,这在不损害其成本的情况下保证了足够的舒适度。为了考虑与操作和环境条件的变化相关的结构模态性能的修改的效果,设计要求的顺应性已通过可靠性指标制定。因此,必须进行可靠性分析以评估与上述可维修度极限状态相关的故障的概率。

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