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Optimized Design of Seismic isolation Systems for Existing Bridges

机译:既有桥梁隔震系统的优化设计

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Nowadays base isolation represents one of the most effective solutions for seismic protection of both building and bridge structures. Thanks to the provided low stiffness and the high dissipation capacity, a significant reduction of internal forces induced in the superstructure can be obtained, with limited increased displacement demands. However, for bridge structures, the definition of the layout for anti-seismic devices can strongly affect the overall response of the system, due to the interaction between properties of each isolator and stiffness characteristics of piers. Precisely, the topography of the bridge site may lead to relatively high vertical supporting elements. Such elements would not take advantage of an additional isolation layer: thus, the displacement seismic demand of the deck can be directly accommodated through the flexural deformation of tall elements. On the other hand, isolators on short piers are generally needed, in order to avoid unexpected brittle shear failures. In the present endeavour a simplified optimization procedure is proposed for the most efficient definition of the seismic isolation system for existing bridges retrofit. The response of a case study structure has been assessed for the calibration of the implemented parameters, through Non-Linear Time History Analyses, by applying spectrum-compatible natural records. Finally, a framework for hybrid simulations with sub-structuring has been considered, aiming at evaluating the effectiveness of the presented design strategy, by means of an experimental validation.
机译:如今,基础隔离是建筑物和桥梁结构抗震保护的最有效解决方案之一。由于所提供的低刚度和高耗散能力,在有限的增加的位移需求的情况下,可以显着减小在上部结构中引起的内力。但是,对于桥梁结构,由于每个隔离器的特性与墩的刚度特性之间的相互作用,抗震设备布局的定义会严重影响系统的整体响应。准确地讲,桥梁站点的地形可能会导致相对较高的垂直支撑元素。这样的元件将不会利用附加的隔离层:因此,可以通过高层元件的挠曲变形直接适应甲板的位移地震需求。另一方面,为了避免意外的脆性剪切破坏,通常需要在短墩上安装隔离器。在目前的努力中,提出了一种简化的优化程序,以最有效地定义现有桥梁的减震系统。通过应用非线性兼容的历史记录,通过非线性时程分析,对案例研究结构的响应进行了评估,以校准已实施的参数。最后,考虑了带有子结构的混合仿真框架,旨在通过实验验证来评估所提出的设计策略的有效性。

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