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Innovative hybrid FRP/steel splice details for modular bridge expansion joints.

机译:模块化桥梁伸缩缝的创新混合FRP /钢接头细节。

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摘要

Bridge expansion joints are directly subjected to traffic load, and thus prone to premature fatigue failure. Replacement of components such as modular bridge expansion joints is typically done in a staggered schedule to minimize traffic blockage. Field splices are used to connect the successively installed segments. These splices typically include a combination of field welding or bolting, and experience has shown that they often fail due to fatigue cracking.;Two configurations have been examined: A GFRP pultruded square tube section, adhesively bonded to the soffit of the spliced beam, consists the moment resisting component in one configuration, whereas the other takes advantage of two series of FRP plates for this purpose. Bolted steel plates splice the beam through web in both cases. The behaviour of these details has been studied extensively under vertical static loads. The effect of several parameters including bond length, FRP end shape, bond surface treatment, adhesive, etc. for each detail has been investigated. A three-dimensional, non-linear finite element model has been developed for each detail and validated using the experimental results.;The bond strength of two adhesives was investigated experimentally using double shear lap splice tests.;A new method is proposed to analyze the strength of the splice details. This method is based on the results obtained from shear lap splice tests and the verified finite element model developed for the splice detail. The finite element model could thus be used for further parametric studies. More experiments, however, are statistically required before using this model with confidence.;This thesis reports the investigation of hybrid FRP/steel splice details that avoid the use of field welding.;The fatigue behaviour of one of the promising splice details has been investigated both experimentally and numerically. A special fatigue test set-up has been designed and used successfully for this purpose. Two fatigue tests to 1,000,000 cycles were run. One failed at 719, 347 cycles and the other survived 1,000,000 cycles. The predicted fatigue life as per the developed model was 871,840 cycles. More experiments are required to understand the fatigue behaviour of the splice detail under various stress ranges.
机译:桥梁伸缩缝直接承受交通负荷,因此容易过早疲劳失效。组件(例如模块化桥梁伸缩缝)的更换通常以交错的时间表进行,以最大程度地减少交通阻塞。现场接头用于连接相继安装的网段。这些接头通常包括现场焊接或螺栓连接,经验表明它们经常由于疲劳裂纹而失效。;已检查了两种配置:GFRP拉挤的方管型材,粘结在拼接梁的拱腹上,由在一种配置中,抗力矩组件是有效的,而另一种则利用两个系列的FRP板来实现这一目的。在两种情况下,螺栓连接的钢板都将梁通过腹板拼接。这些细节的行为已经在垂直静态载荷下进行了广泛的研究。对于每个细节,已经研究了几个参数的影响,包括粘合长度,FRP端部形状,粘合表面处理,粘合剂等。针对每个细节建立了三维非线性有限元模型,并通过实验结果进行了验证。;使用双剪切搭接试验对两种胶粘剂的粘合强度进行了实验研究;提出了一种新的方法来分析接头细节的强度。该方法基于从剪切搭接测试获得的结果以及针对拼接细节开发的经过验证的有限元模型。因此,有限元模型可以用于进一步的参数研究。但是,在使用该模型之前,在统计学上需要进行更多的实验才能放心使用。;本文报道了避免使用现场焊接的FRP /钢混合接头细节的研究。;已经研究了一种有希望的接头细节的疲劳行为。无论是实验上还是数值上。为此已经设计并成功使用了特殊的疲劳测试装置。运行了两次疲劳测试,达到1,000,000次循环。一个在719、347个周期中失败,另一个在1,000,000个周期中幸存下来。根据开发的模型,预计疲劳寿命为871,840个循环。需要更多的实验来了解各种应力范围内接头细节的疲劳行为。

著录项

  • 作者

    Rameshni, Ramin.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 305 p.
  • 总页数 305
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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