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Repair of bridge steel girders damaged by distortion-induced fatigue.

机译:修复因变形引起的疲劳损坏的桥梁钢梁。

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摘要

This study investigates the repair of steel bridge girders damaged by distortion-induced fatigue. The study is presented in three parts. The first part describes finite element modeling techniques used to evaluate the potential for fatigue cracks in steel girders subjected to distortion-induced fatigue. The modeling techniques employed in this study were intended to identify areas near welded connections in bridge girders with the highest potential for developing fatigue cracks, and to evaluate the effectiveness of retrofit measures in reducing the potential for crack propagation near welded connections with existing fatigue cracks. Computer simulations correlated well with experimentally observed crack patterns and were useful in providing an indication of the effectiveness of various retrofit measures.;The second part of the study investigates the use of composite materials to repair fatigue damage in steel girders. A total of 17 specimens with pre-existing fatigue cracks were tested under cyclic loading to evaluate the performance of composite overlays when used to repair fatigue damage in steel structures. Two control specimens were tested without overlays and the remaining 15 were repaired with Carbon Fiber Reinforced Polymer (CFRP) overlays of various thicknesses. Results indicate that this method was very effective, and that proper implementation of this type of repair can reduce the crack propagation rate to negligible values.;The third part of the study consisted of physical and computer simulations of 914-mm (36-in.) deep girder-cross frame subassemblies subjected to cyclic loading. The simulations were carried out to investigate the stress demands caused by distortion-induced fatigue and to evaluate the effectiveness of various retrofit measures. Previously used repair methods for distortion-induced fatigue damage have attempted to reduce the stress demand in the web gap region by increasing the flexibility of cross-frame to girder connection or by restraining the lateral motion of the cross-frame by attaching the connection plate to the slab. A new retrofit approach was investigated in this study designed to reduce the stress demand in the web gap region by distributing the force at the girder-cross frame connection over a larger area. A new retrofit detail is proposed based on this approach, which consists of adding steel angles connecting the girder web and the connection plate, and a steel bar on the back side of the girder web to distribute the lateral force over a wider region of the web. Experimental and computer simulation results are presented showing that this repair method is very effective in preventing the growth of horseshoe-shaped cracks around the web-cross frame connection and of straight cracks near the junction between the flange and web
机译:这项研究调查了变形引起的疲劳损坏的钢桥梁的修复。该研究分为三个部分。第一部分描述了有限元建模技术,用于评估承受变形引起的疲劳的钢梁疲劳裂纹的可能性。本研究中使用的建模技术旨在确定桥梁梁中焊接连接处附近最有可能产生疲劳裂纹的区域,并评估改进措施的有效性,以减少存在疲劳裂纹的焊接连接处裂纹扩展的可能性。计算机模拟与实验观察到的裂纹模式有很好的相关性,可用于表明各种改造措施的有效性。研究的第二部分研究了使用复合材料修复钢梁的疲劳损伤。在循环载荷下测试了总共17个具有预先存在的疲劳裂纹的样本,以评估复合材料覆盖层在修复钢结构中的疲劳损伤时的性能。测试了两个不带覆盖层的对照样品,其余15个样品用各种厚度的碳纤维增强聚合物(CFRP)覆盖层修复了。结果表明该方法非常有效,正确实施这种修复方法可以将裂纹扩展速率降低到可以忽略不计的值。;研究的第三部分包括914毫米(36英寸)的物理和计算机模拟。 )承受循环荷载的深梁跨框架子组件。进行了仿真,以研究由变形引起的疲劳引起的应力需求,并评估各种改进措施的有效性。以前使用的用于变形引起的疲劳损伤的修复方法已尝试通过增加横梁到梁连接的柔韧性或通过将连接板固定到横梁来限制横梁的横向运动来减少腹板间隙区域中的应力需求。平板。在这项研究中,研究了一种新的改造方法,该方法旨在通过在更大的面积上分配横梁和框架之间的力来减少腹板间隙区域中的应力需求。在此方法的基础上,提出了一种新的改造细节,包括增加连接角钢腹板和连接板的角钢,以及在角钢腹板背面上的钢筋,以将侧向力分布在腹板的较宽区域。实验和计算机仿真结果表明,该修复方法非常有效地防止了腹板跨框架连接周围的马蹄形裂纹的增长以及法兰和腹板连接处附近的直裂纹的增长。

著录项

  • 作者

    Alemdar, Fatih.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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