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Assessment of shear capacity methods of steel fiber reinforced concrete beams using full scale prestressed bridge beams

机译:足尺预应力桥梁梁对钢纤维混凝土梁抗剪承载力方法的评估

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摘要

Steel fiber addition in concrete is widely known to increase the non-flexural performance of concrete structures such as shear capacity. Design guides such as fib Model Code (2010) have recognised this effect and that these guidelines may become widely accepted. The current design guides are based on laboratory scale tests which may be compromised by the scale effects. This paper reports the results of full sized precast prestressed bridge beams that were fabricated and tested to shear failure. Two beams had steel fiber and two beams were plain concrete. None of the beams had any vertical shear reinforcements. The addition of steel fiber at the dosage of 60 kg per cubic metre resulted in more than twice the shear capacity as compared to the beams without steel fibers. The results of the fiber reinforced beams were compared with the calculated shear capacity of the fib Model Code (2010) and plastic design method. This paper presents a method to include prestress in previously developed plastic design method. The model code method predicted an increase of shear capacity of 22 % as compared to the experimental results of 112 % increase due to steel fiber addition. This demonstrates that the model code is not effective in taking into consideration of the contributions by steel fibers. The plastic design approach predicted an increase of shear capacity of 122 % which is close to the experimental values. Based on this full scale tests, the plastic design approach appears to be more suitable for estimation of shear capacity enhancement when steel fibers are used.
机译:众所周知,在混凝土中添加钢纤维可以提高混凝土结构的非弯曲性能,例如剪切能力。设计指南(例如fib模型代码(2010))已经意识到了这种影响,并且这些指南可能会被广泛接受。当前的设计指南基于实验室规模的测试,可能会受到规模效应的影响。本文报告了预制的全尺寸预应力桥梁的结果,并对其进行了剪切破坏测试。两根横梁是钢纤维,两根横梁是普通混凝土。所有的梁都没有任何垂直抗剪钢筋。与没有钢纤维的梁相比,以每立方米60千克的剂量添加钢纤维可产生两倍以上的剪切能力。将纤维增强梁的结果与fib模型规范(2010)和塑性设计方法的计算抗剪承载力进行了比较。本文提出了一种在预开发的塑料设计方法中包括预应力的方法。模型代码方法预测,由于添加钢纤维,与增加112%的实验结果相比,剪切能力将增加22%。这表明模型代码在考虑钢纤维的贡献方面无效。塑性设计方法预测剪切能力增加122%,接近实验值。基于此全面测试,塑料设计方法似乎更适合用于估计使用钢纤维时的剪切能力增强。

著录项

  • 来源
    《Materials and structures》 |2015年第11期|3473-3483|共11页
  • 作者

    Bendtsen Bo; Sanjayan Jay G.;

  • 作者单位

    Swinburne Univ Technol, Ctr Sustainable Infrastruct, Fac Sci Engn & Technol, Hawthorn, Vic 3122, Australia;

    Swinburne Univ Technol, Ctr Sustainable Infrastruct, Fac Sci Engn & Technol, Hawthorn, Vic 3122, Australia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Steel fibers; Concrete; Shear; Prestressed; Plastic method; fib Model Code;

    机译:钢纤维;混凝土;剪切;预应力;塑性方法;纤维模型代码;

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