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Analysis of doubly loaded end blocks in FRP-prestressed concrete

机译:FRP预应力混凝土中双荷载端块的分析

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Corrosion in conventional steel-reinforced and prestressed concrete bridges is a major durability concern. Fibre-reinforced polymer (FRP) materials have received widespread interest as an alternative material to steel. Owing to the low stiffness of these materials compared with steel, it could be argued that concrete bridges containing FRP should be prestressed. In doing so, this removes much of the strain capacity in the FRP, so that serviceability of the bridge is ensured and efficient use is made of all materials. Although relevant research into FRP-prestressed concrete is well established, the area of post-tensioned anchorage zones has received very little attention. The current paper concentrates on the analysis (and the design) of post-tensioned anchorage zones subject to multiple anchors, with the feasibility of adopting FRP bars as equilibrium reinforcement. Using an elasticity-based model, both the position and load at first cracking have been predicted with good accuracy compared with the experimental results. Further, a plasticity-based model has been developed, in which equilibrium of the failing wedge formed underneath the bearing plates at ultimate load is considered, and which has also shown good correlation compared with test results. It is concluded that both the serviceability and ultimate limit state behaviours of post-tensioned FRP-reinforced anchorage zones subject to multiple anchors are predictable. The pre-cracking behaviour can be predicted using an elastic finite difference method, while a plasticity-based analytical solution can be used to predict the ultimate capacity.
机译:传统的钢筋和预应力混凝土桥梁的腐蚀是主要的耐久性问题。作为钢的替代材料,纤维增强聚合物(FRP)材料已引起广泛关注。由于这些材料的刚度比钢低,因此可以认为含FRP的混凝土桥梁应予预应力。这样做可以消除FRP的大部分应变能力,从而确保桥梁的可维修性,并有效利用所有材料。尽管已经对FRP预应力混凝土进行了相关研究,但后张锚固区域的面积很少受到关注。目前的论文集中在受多个锚固的后张锚固区域的分析(和设计)上,以及采用FRP筋作为平衡钢筋的可行性。使用基于弹性的模型,与实验结果相比,可以很好地预测第一次开裂的位置和载荷。此外,已经开发了基于可塑性的模型,其中考虑了在极限载荷下在轴承板下方形成的破坏楔的平衡,并且与测试结果相比,该模型也显示出良好的相关性。结论是,预应力后FRP加固的锚固区域受多个锚固的使用寿命和极限状态行为都是可以预测的。可以使用弹性有限差分法预测开裂前的行为,而基于塑性的分析解决方案可以用来预测极限承载力。

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