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The City of Calgary 12 Street Bridge Replacement and Monitoring

机译:卡尔加里市12街桥梁的更换和监测

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This project included the construction of a new three-span, 170 m-long steel box girder bridge to replace the existing St. George's Island Bridge over the Bow River. The new bridge is composed of variable depth (arched), rectangular, steel box girders. Flood resiliency and sustainability were major considerations in the design of the bridge. The girders have a curved profile that allows for the majority of the superstructure to sit at least 1 m above the 1:100 year flood level. To minimize the work required over the river, full-depth, full-width, precast concrete deck panels were used. The panel-to-panel and panel-to-girder connections were made with Ultra-High-Performance Concrete (UHPC). Continuity of bridges with full-depth precast panels is usually provided by longitudinal post-tensioning. This was not preferred due to concerns about future deck rehabilitations. Therefore, the design relies on reinforcement splices for continuity. UHPC made it possible to transfer longitudinal forces in relatively short splice lengths. To verify the efficiency of these connections, some of the panels and connecting joints were instrumented with wireless strain gauges to monitor force transfer between adjacent panels. The paper includes a description of the bridge structure (girders and the precast deck panels) and the initial results of the strain monitoring.
机译:该项目包括建造一座新的三跨、170米长的钢箱梁桥,以取代现有的弓河圣乔治岛大桥。新桥由变深(拱形)矩形钢箱梁组成。洪水恢复力和可持续性是桥梁设计的主要考虑因素。主梁具有弯曲剖面,允许大多数上部结构位于1:100年一遇洪水位上方至少1m处。为了最大限度地减少河流上方所需的工作,使用了全深度、全宽度的预制混凝土桥面板。面板与面板和面板与主梁的连接采用超高性能混凝土(UHPC)制成。全深度预制板桥梁的连续性通常由纵向后张法提供。出于对未来甲板修复的担忧,这不是首选方案。因此,设计依赖于钢筋拼接的连续性。UHPC使得在相对较短的拼接长度内传递纵向力成为可能。为了验证这些连接的效率,一些面板和连接接头安装了无线应变计,以监测相邻面板之间的力传递。本文包括对桥梁结构(主梁和预制桥面板)的描述以及应变监测的初步结果。

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