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Innovative Shear Connections for the Accelerated Construction of Composite Bridges

机译:创新的剪力连接,加快了复合材料桥梁的施工

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摘要

Accelerated bridge construction methods are being progressively used to construct and replace bridges in North America. Unlike traditional bridge construction methods, accelerated bridge construction methods allow bridges to be built in a shortened period of time on the construction site. These methods reduce the road closure time and the traffic disruption that are associated with bridge construction. One of these methods is carried out by prefabricating the bridge elements offsite and then assembling them onsite in a time-efficient way to build the bridge. This construction method can be used to build steel-precast composite bridges, where steel plate girders are connected to full-depth precast concrete deck panels. For the expeditious construction of composite bridges, a proper shear connection detail is needed to develop composite action between the steel plate girders and the precast concrete deck panels.This research project investigated two types of shear connection that would accelerate the construction of steel-precast composite bridges. First, finite element analysis was used to study the behaviour of composite bridge girders with panel end connections. The girders were analyzed for their load-displacement behaviour, cross-sectional stress and strain profile, and connection force distributions. Secondly, experimental push tests were conducted to study the load-slip behaviour of bolted connections. The effects of steel-concrete interface condition, bolt diameter and bolt tension on the shear capacity of bolted connections were analyzed. Based on the finite element analysis results, it is concluded that the panel end connected girder exhibited strong composite action at service and ultimate load. The level of composite action decreased slightly when the panel end connection stiffness was reduced by a factor of ten. Based on the experimental results, it is concluded that the total shear capacity of the bolted connection is the sum of the friction resistance and the bolt dowel action resistance. The friction resistance of the connection depends on the interface condition and the bolt clamping force. An analytical model that can predict the ultimate shear capacity of bolted connections has been developed and recommended. The proposed model is shown to give reliable predictions of the experimental results. It should be noted that bolted connections exhibit good structural redundancy because the bolt fracture failures do not happen simultaneously.
机译:在北美,加速桥梁的建造方法正在逐步用于建造和替换桥梁。与传统的桥梁施工方法不同,加速桥梁施工方法可在较短的时间内在施工现场建造桥梁。这些方法减少了与桥梁施工相关的道路关闭时间和交通中断。这些方法中的一种是通过在异地预制桥元件,然后以省时的方式在现场组装它们来建造桥来执行的。这种施工方法可用于建造钢-预制复合桥,其中将钢梁连接到全深度的预制混凝土面板上。为了快速建造复合材料桥梁,需要适当的剪力连接细节来发展钢板梁与预制混凝土面板之间的复合作用。本研究项目研究了两种类型的剪力连接方式,它们可以加快钢-预制复合材料的施工桥梁。首先,使用有限元分析来研究具有面板端部连接的组合式桥梁的性能。分析了大梁的荷载-位移特性,横截面应力和应变曲线以及连接力分布。其次,进行了试验推力测试,以研究螺栓连接的负载滑移行为。分析了钢筋混凝土界面条件,螺栓直径和螺栓张力对螺栓连接抗剪承载力的影响。根据有限元分析结果,可以得出结论:面板端部连接的梁在使用和极限荷载下均表现出强大的复合作用。当面板端部连接刚度降低十倍时,复合作用的水平会略有下降。根据实验结果可以得出结论,螺栓连接的总剪切能力是摩擦阻力和螺栓销钉作用阻力之和。连接的摩擦阻力取决于界面条件和螺栓夹紧力。已经开发并推荐了可以预测螺栓连接的极限剪切能力的分析模型。所提出的模型显示出对实验结果的可靠预测。应当指出,螺栓连接具有良好的结构冗余性,因为螺栓断裂失败不会同时发生。

著录项

  • 作者

    Chen Yu-Ta;

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  • 年度 2013
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  • 原文格式 PDF
  • 正文语种 en
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