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Behaviour of Post-Tensioned Slab Bridges with FRP Reinforcement under Monotonic and Fatigue Loading

机译:单调和疲劳荷载下带FRP加固的张拉平板桥的行为

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摘要

The introduction of fibre-reinforced polymers (FRPs) to the field of civil engineering has led to numerous research efforts focusing on a wide range of applications where properties such as high strength, light weight or corrosion resistance are desirable. In particular, FRP materials have been especially attractive for use as internal reinforcement in reinforced concrete (RC) structures exposed to aggressive environments due to the rapidly deteriorating infrastructure resulting from corrosion of conventional steel reinforcement. While FRPs have been successfully implemented in a variety of structural applications, little research has been conducted on the use of FRP reinforcement for short span slab bridges. Furthermore, the behaviour of FRP-RC flexural members cast with self-consolidating concrete (SCC) is largely absent from the literature.The present study investigates the behaviour of an all-FRP reinforcement system for slab bridges which combines lower cost glass FRP (GFRP) reinforcing bars with high performance carbon FRP (CFRP) prestressed tendons in SCC to produce a structure which is both cost-efficient and characterized by excellent structural performance at the serviceability, ultimate and fatigue limit states. An extensive experimental program comprised of 57 large or full-scale slab strips was conducted to investigate the effects of reinforcement type, reinforcement ratio, prestressing level and shear reinforcement type on the flexural performance of slab bridges under both monotonic and fatigue loading. The proposed reinforcement system was found to display excellent serviceability characteristics and high load capacities as well as significant deformability to allow for sufficient warning prior to failure. Lastly, the use of post-tensioned CFRP tendons limited the stresses in the GFRP reinforcing bars leading to significantly longer fatigue lives and higher fatigue strengths compared to non-prestressed slabs.Analytical models were used to predict the behaviour of the slab bridge strips at service and at ultimate. Where these models failed to accurately represent the experimental findings, simple modifications were proposed. The results from ancillary tests were also used to modify existing analytical models to predict the effects of fatigue loading on the deflection, crack width, shear resistance and flexural capacity of each of the tested slabs.
机译:将纤维增强聚合物(FRP)引入土木工程领域已导致许多研究工作集中在希望具有诸如高强度,轻量或耐腐蚀性等特性的广泛应用中。特别地,由于常规钢增强材料的腐蚀导致基础设施迅速恶化,FRP材料特别适合用作暴露于侵蚀性环境的钢筋混凝土(RC)结构中的内部增强材料。尽管玻璃钢已经在各种结构应用中成功实施,但对于将玻璃钢加固用于短跨度平板桥的研究很少。此外,文献中几乎没有使用自固结混凝土(SCC)浇铸的FRP-RC受弯构件的性能。本研究研究了结合了低成本玻璃FRP(GFRP)的平板桥全FRP增强系统的性能)在SCC中使用高性能碳纤维FRP(CFRP)预应力筋加固的钢筋,可生产出既经济高效又在使用性,极限和疲劳极限状态下具有出色结构性能的结构。进行了由57个大型或全尺寸板条组成的广泛实验程序,以研究在单调荷载和疲劳荷载下,钢筋类型,钢筋配比,预应力水平和剪力钢筋类型对板桥抗弯性能的影响。发现建议的加固系统具有出色的可维修性,高承载能力以及显着的可变形性,可以在发生故障之前进行充分的警告。最后,后张CFRP筋的使用限制了GFRP钢筋的应力,与非预应力板相比,可显着延长疲劳寿命并提高疲劳强度。使用分析模型来预测在役的平板桥板的性能最终如果这些模型无法准确表示实验结果,则提出了简单的修改方法。辅助测试的结果还用于修改现有的分析模型,以预测疲劳载荷对每个被测板的挠度,裂纹宽度,抗剪强度和抗弯能力的影响。

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    Noel Martin;

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  • 年度 2013
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