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Optimizing structure and mitigating risks for lead rubber bearings: application on Jakarta Light Rail Transit (LRT)

机译:优化铅橡胶轴承的结构并减轻其风险:在雅加达轻轨交通(LRT)上的应用

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The use of lead rubber bearing becomes popular in moderate to high seismic zones in the case of highway bridges. It has the benefits to reduce the demand significantly compared to typical structures, for which seismic restrainers are considered. LRB may have a significant impact on the quantities, on the construction and also on the maintenance. To be efficient, the LRB yielding force should be small enough to generate large damping in case of seismic event. For railway project such as Jakarta LRT, this yielding force should also be calibrated smartly in order to avoid daily yielding in the case of braking/traction and temperature. This yielding force was calibrated in different zones of the project by carrying out rail structure interaction analysis. Another aspect of typical metro designs is that the restrainer usually prevents lateral differential displacements between adjacent spans, and prevent then significant cyclic increment of stresses in rails and fatigue failures. In the case of LRB, there is no question to use restrainers. Even before reaching its yielding force, the LRB has a certain flexibility transversally. We implemented keys connecting adjacent decks transversally. Those connections were designed with a special analysis taking into account deck, bearing characteristics, continuous rail, connections keys between decks, fastening system design and mechanical characteristics (longitudinal restrain, transversal stiffness etc..). This provides a good understanding on the overstress generated in the rail and the fastening system.
机译:在公路桥梁的情况下,铅橡胶轴承的使用在中高地震带中变得很普遍。与考虑了抗震器的典型结构相比,它具有显着降低需求的优势。 LRB可能会对数量,结构以及维护产生重大影响。为了提高效率,LRB屈服力应足够小,以在发生地震时产生较大的阻尼。对于雅加达轻轨等铁路项目,该屈服力也应进行智能校准,以避免在制动/牵引和温度情况下产生日常屈服。通过进行轨道结构相互作用分析,在项目的不同区域对屈服力进行了校准。典型地铁设计的另一个方面是,约束器通常可防止相邻跨距之间的横向差异位移,从而防止铁轨中应力的明显循环增量和疲劳破坏。对于LRB,毫无疑问要使用限制器。即使在达到屈服力之前,LRB仍具有一定的横向挠性。我们实现了横向连接相邻甲板的按键。这些连接的设计经过特殊分析,考虑了桥面,轴承特性,连续导轨,桥面之间的连接键,紧固系统设计和机械特性(纵向约束,横向刚度等)。这样可以很好地理解导轨和紧固系统中产生的过应力。

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