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Behavior of circular concrete columns reinforced with FRP bars and stirrups.

机译:用FRP筋和箍筋加固的圆形混凝土柱的性能。

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摘要

The behavior of concrete members reinforced with fiber reinforced polymer (FRP) bars has been the focus of many studies in recent years. Nowadays, several codes and design guidelines are available for the design of concrete structures reinforced with FRP bars under flexural and shear loads. Meanwhile, limited research work has been conducted to examine the axial behavior of reinforced concrete (RC) columns with FRP bars. Due to a lack of research investigating the axial behavior of FRP reinforced concrete columns, North American codes and design guidelines do not recommend using FRP bars as longitudinal reinforcement in columns to resist compressive stresses.;This dissertation aims at evaluating the axial performance of RC compression members reinforced with glass FRP (GFRP) and carbon FRP (CFRP) bars and stirrups through experimental and analytical investigations. A total of twenty seven full scale circular RC specimens were fabricated and tested experimentally under concentric axial load. The 300 mm diameter columns were designed according to CAN/CSA S806-12 code requirements. The specimens were divided to three series; series I contains three reference columns; one plain concrete and 2 specimens reinforced with steel reinforcement. Series II contains 12 specimens internally reinforced with GFRP longitudinal bars and transverse GFRP stirrups, while series III includes specimens totally reinforced with CFRP reinforcement. The experimental tests were performed at the structural laboratory, Faculty of Engineering, University of Sherbrooke. The main objective of testing these specimens is to investigate the behavior of circular concrete columns reinforced with GFRP or CFRP longitudinal bars and transverse hoops or spirals reinforcement. Several parameters have been studied; type of reinforcement, longitudinal reinforcement ratio, the volumetric ratios, diameters, and spacing of spiral reinforcement, confinement configuration (spirals versus hoops), and lap length of hoops. The test results of the tested columns were presented and discussed in terms of axial load capacity, mode of failure, concrete, longitudinal, and transverse strains, ductility, load/stress--strain response, and concrete confinement strength through four journal papers presented in this dissertation.;Based on the findings of experimental investigation, the GFRP and CFRP RC columns behaved similar to the columns reinforced with steel. It was found that, FRP bars were effective in resisting compression until after crushing of concrete, and contributed on average 8% and 13% of column capacity for GFRP and CFRP RC specimens, respectively. Also, the use of GFRP and CFRP spirals or hoops according to the provisions of CSA 5806-12 yielded sufficient restraint against the buckling of the longitudinal FRP bars and provided good confinement of the concrete core in the post-peak stages. The axial deformability (ductility) and confinement efficiency can be better improved by using small FRP spirals with closer spacing rather than larger diameters with greater spacing. It was found that, ignoring the contribution of FRP longitudinal bars in the CAN/CSA 5806-12 design equation underestimated the maximum capacity of the tested specimens. Based on this finding, the design equation is modified to accurately predict the ultimate load capacities of FRP RC columns. New factors alpha g and alphac were introduced in the modified equation to account for the GFRP and CFRP bars compressive strength properties as a function in their ultimate tensile strength.;On the other hand, proposed equations and confinement model were presented to predict the axial stress-strain behavior of FRP RC columns confined by FRP spirals or hoops. The model takes into account the effect of many parameters such as; type of reinforcement, longitudinal reinforcement ratio; transverse reinforcement configuration; and the volumetric ratio. The proposed model can be used to evaluate the confining pressure, confined concrete core stress, corresponding concrete strain, and stress-strain relationship. The results of analysis using the proposed confinement model were compared with experimental database of twenty four full-scale circular FRP RC columns. A good agreement has been obtained between the analytical and experimental results. Proposed equations to predict both strength and stress-strain behavior of confined columns by FRP reinforcements demonstrate good correlation with test data obtained from full-scale specimens.
机译:近年来,纤维增强聚合物(FRP)钢筋增强混凝土构件的性能一直是许多研究的重点。如今,在弯曲和剪切荷载下,有一些规范和设计指南可用于设计用FRP筋加固的混凝土结构。同时,已经进行了有限的研究工作来检查带有FRP筋的钢筋混凝土(RC)柱的轴向性能。由于缺乏研究FRP钢筋混凝土柱轴向性能的研究,北美规范和设计指南不建议在柱中使用FRP筋作为纵向钢筋来抵抗压缩应力。;本论文旨在评估RC压缩的轴向性能通过玻璃纤维增​​强塑料(GFRP)和碳纤维增强塑料(CFRP)筋和箍筋加固的构件,通过实验和分析研究。总共制造了27个全尺寸圆形RC样本,并在同心轴向载荷下进行了实验测试。直径为300 mm的色谱柱是根据CAN / CSA S806-12编码要求设计的。标本分为三个系列。系列I包含三个参考列; 1个普通混凝土和2个用钢筋加固的标本。系列II包含12个内部用GFRP纵向筋和横向GFRP箍筋增强的标本,而系列III包含完全用CFRP增强材料增强的标本。实验测试在舍布鲁克大学工程学院的结构实验室进行。测试这些标本的主要目的是研究用GFRP或CFRP纵筋和横向箍或螺旋筋加固的圆形混凝土柱的性能。已经研究了几个参数。钢筋的类型,纵向钢筋的比例,体积比,直径和螺旋钢筋的间距,约束构型(螺旋与箍)以及箍的搭接长度。通过四篇期刊论文介绍并讨论了被测柱的测试结果,包括轴向承载能力,破坏模式,混凝土,纵向和横向应变,延性,载荷/应力-应变响应以及混凝土约束强度。基于实验研究的结果,GFRP和CFRP RC柱的性能与钢柱相似。结果发现,直到混凝土破碎后,FRP筋才能有效抵抗压缩,并且分别对GFRP和CFRP RC试样分别贡献了8%的柱容量和13%的柱容量。同样,根据CSA 5806-12的规定使用GFRP和CFRP螺旋或箍对纵向FRP钢筋的屈曲具有足够的约束力,并在峰后阶段对混凝土芯进行了良好的约束。通过使用间距较小的FRP螺旋而不是间距较大的较大直径的FRP螺旋,可以更好地改善轴向变形性(延展性)和约束效率。结果发现,忽略FRP纵向钢筋在CAN / CSA 5806-12设计方程式中的作用,低估了被测样品的最大容量。基于此发现,可以修改设计方程,以准确预测FRP RC柱的极限荷载能力。在修正的方程式中引入了新的因子αg和αc,以说明GFRP和CFRP钢筋的抗压强度特性是其极限抗拉强度的函数。另一方面,提出了建议的方程式和约束模型来预测轴向应力FRP RC柱受FRP螺旋或箍限制的应变特性。该模型考虑了许多参数的影响,例如;钢筋类型,纵向钢筋配比;横向钢筋配置;和体积比。所提出的模型可用于评估围压,承压混凝土核心应力,相应的混凝土应变以及应力应变关系。使用提出的约束模型的分析结果与二十四个全尺寸圆形FRP RC柱的实验数据库进行了比较。在分析和实验结果之间已经获得了很好的协议。通过FRP增强来预测密闭柱的强度和应力-应变行为的拟议方程表明,该方程与从全尺寸试样获得的测试数据具有良好的相关性。

著录项

  • 作者

    Afifi, Mohammad M. Zaki M.;

  • 作者单位

    Universite de Sherbrooke (Canada).;

  • 授予单位 Universite de Sherbrooke (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 269 p.
  • 总页数 269
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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