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首页> 外文期刊>Composites >Influences of polymer concrete surfacing and localised load distribution on behaviour up to failure of an orthotropic FRP bridge deck
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Influences of polymer concrete surfacing and localised load distribution on behaviour up to failure of an orthotropic FRP bridge deck

机译:聚合物混凝土堆焊和局部荷载分布对正交各向异性FRP桥面板直至破坏的行为的影响

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摘要

This paper presents experimental results which demonstrate the important, but to date little-studied influence of surfacing on the response up to failure of orthotropic GFRP bridge decking local to concentrated loading. Four bonded deck specimens were tested, two without surfacing and two including a 30 mm thick polymer concrete surfacing layer. A specified steel plate-rubber pad ensemble which produced a load distribution generating high shear and low moment locally was used to load one surfaced and one unsurfaced specimen to failure, while a plate-pad system inducing modest shear and high moment locally (nearer the tyre effect) was used to fail the other two specimens. The surfaced specimens' load capacities exceeded those of their unsurfaced counterparts by 90% and 261% under the shear-dominant and moment-dominant loads respectively. For each surfaced specimen, failure occurred in part by formation of a distinctly curved crack in the polymer concrete. In contrast to reports of detached surfac^ ing on real FRP deck bridges, no debonding was observed at the surfacing-deck interfaces during these tests. This suggests scope for significantly improved surfacing-deck bond integrity in practice. GFRP delamination, particularly within the directly loaded flange, also occurred in the four test specimens. The critical failure zone shifted from the flange's ends to its local midspan in changing from shear-dominant to moment-dominant loading. It is concluded that the status quo standard of testing unsurfaced deck specimens should be modified to testing of surfacing-deck systems.
机译:本文提供的实验结果证明了重要的,但迄今为止尚未研究的表面堆砌对局部集中荷载作用下的正交异性GFRP桥面板破坏响应的影响。测试了四个粘结甲板样品,两个没有铺面,两个包括30毫米厚的聚合物混凝土铺面层。使用指定的钢板-橡胶垫整体产生载荷分布,从而在局部产生高剪切和​​低弯矩,以将一个表面和一个非表面试样加载到破坏,而板-垫板系统则在局部引起适度的剪切和高弯矩(靠近轮胎)效果)用于使其他两个样本失效。在剪切力为主和矩力为主的情况下,表面试样的承载能力分别比未表面试样高出90%和261%。对于每个表面试样,破坏都部分是由于在聚合物混凝土中形成了明显弯曲的裂纹所致。与真实的FRP甲板桥梁表面脱离的报告相反,在这些测试过程中未观察到铺面接触面的脱胶现象。这表明在实践中可以显着改善铺面-甲板粘结的完整性。在四个试样中也发生了GFRP分层,特别是在直接加载的法兰内。临界破坏区域从凸缘的端部转移到其局部中跨,从剪力为主转变为弯矩为主。结论是,应修改测试无表面甲板样品的现状标准,以测试铺面系统。

著录项

  • 来源
    《Composites》 |2013年第1期|1234-1250|共17页
  • 作者单位

    Department of Civil Engineering, University of Bristol, University Walk, Bristol BS8 1TR, UK;

    Composite Construction Laboratory, tcole Polytechnique Federate de Lausanne, Switzerland;

    Department of Civil Engineering, University of Bristol, University Walk, Bristol BS8 1TR, UK;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    A. Glass fibres; B. Delamination; B. Strength; D. Mechanical testing; FRP deck;

    机译:A.玻璃纤维;B.分层;B.力量;D.机械测试;玻璃钢甲板;

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