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Pultruded GFRP sections as stay-in-place structural open formwork for concrete slabs and girders.

机译:GFRP拉挤型材可作为混凝土平板和大梁的原位结构开放式模板。

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摘要

Commercially available glass fiber-reinforced polymer (GFRP) off-the-shelf structural shapes have great potential as stay-in-place open structural forms for concrete structures, including bridge decks and girders. The system simplifies and accelerates construction, and the non-corrosive GFRP forms can fully or partially replace steel rebar. In this study, eight concrete slabs were constructed using flat pultruded GFRP plates, and nine girders were constructed using trapezoidal pultruded GFRP sheet pile sections as stay-in-place structural forms. No tension steel reinforcement was used. All specimens were tested in four-point monotonic uniaxial bending. Four adhesive and mechanical bond mechanisms were explored to accomplish composite action. The most effective mechanism, considering structural performance and ease of fabrication, was wet adhesive bonding of fresh concrete to GFRP. Although failure was by debonding, no slip was observed prior to failure. Other parameters studied were concrete slabs' thicknesses and their shear span-to-depth ratios. For the girders, three different cross-sectional configurations were examined, namely, totally filled sheet piles, one with a voided concrete fill, and an all-GFRP box girder developed by bonding flat GFRP sheets to the upper flanges of the sheet piles with a cast-in-place concrete flange. Girders were tested in positive and negative bending to simulate continuity. The built-up box girders showed superior performance, with up to 70% higher strength and 65% lower weight than the totally filled sections. It was found that similar size conventional steel-reinforced concrete sections of comparable stiffness have considerably lower strength, while those of comparable strength have considerably higher stiffness than FRP-concrete members. An analytical model was developed to predict the behaviour and failure loads of slabs and girders, using cracked section analysis. A unique feature of the model is a multi-stepped failure criteria check that can detect flexural, shear, or bond failure. The model was successfully validated using the experimental results, and used in a parametric study. It was shown that using the typical value of 1MPa for shear strength of cement mortar predicts debonding failure, which occurs slightly above the interface, quite well. Also, in practical applications of longer spans, flexural failure is likely to occur prior to bond failure. The effects of concrete strength, thickness and configurations of the GFRP sheet pile, and varying the shear strength of the cement paste were also explored.
机译:市场上可买到的玻璃纤维增​​强聚合物(GFRP)现成的结构形状具有很大的潜力,可作为混凝土结构(包括桥面板和大梁)的原位开放结构形式。该系统简化并加快了施工过程,无腐蚀的GFRP模板可以完全或部分替代钢筋。在这项研究中,使用平板拉挤GFRP板建造了八块混凝土板,并且使用梯形拉挤GFRP板桩部分作为原位结构形式建造了九个梁。没有使用抗拉钢筋。所有样本均在四点单调单轴弯曲中进行了测试。探索了四种粘合和机械粘合机理来完成复合作用。考虑到结构性能和易于制造,最有效的机制是将新鲜混凝土湿粘结到GFRP上。尽管失效是通过脱粘,但在失效之前未观察到打滑。研究的其他参数是混凝土板的厚度及其剪切跨度与深度之比。对于大梁,检查了三种不同的横截面配置,即,完全填充的板桩,一种是填充有空隙的混凝土,另一种是通过将平坦的GFRP板粘结到板桩的上凸缘而开发的全GFRP箱形梁。现浇混凝土法兰。大梁在正弯和负弯中进行测试以模拟连续性。组合式箱梁表现出卓越的性能,与完全填充的部分相比,强度提高了70%,重量降低了65%。已经发现,具有类似刚度的类似尺寸的常规钢增强混凝土截面的强度要低得多,而具有类似强度的那些截面,其刚度要比FRP混凝土构件高得多。使用裂纹截面分析,开发了一个分析模型来预测板和梁的行为和破坏荷载。该模型的一个独特功能是可以检测弯曲,剪切或粘结破坏的多步破坏准则检查。使用实验结果成功验证了该模型,并将其用于参数研究。结果表明,使用水泥砂浆抗剪强度的典型值1MPa可以预测脱胶失败,该脱胶失败发生在界面上方的一点,非常好。同样,在较长跨度的实际应用中,弯曲破坏很可能在粘结破坏之前发生。还研究了混凝土强度,GFRP板桩的厚度和构型以及改变水泥浆的抗剪强度的影响。

著录项

  • 作者

    Honickman, Hart Noah.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Civil.
  • 学位 M.Sc.
  • 年度 2008
  • 页码 221 p.
  • 总页数 221
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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