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Fatigue life assessment of TTC streetcar concrete pavements.

机译:TTC路面电车混凝土路面的疲劳寿命评估。

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摘要

The Toronto Transit Commission, TTC traditional embedded track for mechanically jointed rails, is performing satisfactory except for accelerated surface concrete deterioration. By far the most damaging group of deterioration processes in streetcars concrete pavement is due to wheel impact on the joints which will subsequently excite a response on the track. The enhancement of special trackwork, STW service life was the initiative to explore encapsulation technology advances in embedded track materials and construction methods. This aimed to extend the life cycle of the track from current average of 15 years towards target life of 50 years.;This research reviews the pros and cons of various factors influencing the life cycle of the current assembly and examining and assessing between alternative track construction methods and materials at the joints and examining the concrete's performance both during the impact fatigue loading resulting in inclined cracking and ongoing service life and durability issues under combined environmental and mechanical loadings.;Experimental results show that it is possible to achieve the targeted service life of 50 years, based on minimum of 10 time superior performance for either of the proposed encapsulation technologies vs. current construction methods.;In the present study, attempts at finding and patterning the localized cracks, especially wheel impact fatigue cracks, are carried out. This issue was investigated during the course of an experimental program demonstrated by simulating the wheel impact loading in concrete under repeated load application. Specially designed specimens were used to represent sheet rubber and urethane encapsulation system proposal against the current assembly.
机译:多伦多运输委员会(TTC)是用于机械连接轨道的TTC传统嵌入式轨道,除表面混凝土加速老化外,表现令人满意。迄今为止,有轨电车混凝土路面中损坏最大的一组劣化过程是由于车轮对接缝的冲击,随后会在轨道上引起响应。特殊轨道工作的延长,STW使用寿命的提高是探索封装技术在嵌入式轨道材料和构造方法方面的进步的举措。目的是将轨道的使用寿命从目前的平均15年延长到50年的目标寿命。这项研究回顾了影响当前装配寿命的各种因素的利弊,并在替代轨道构造之间进行了评估。方法和材料,并在冲击疲劳载荷过程中检查混凝土的性能,这些载荷在环境和机械载荷共同作用下导致倾斜的开裂以及持续的使用寿命和耐久性问题。实验结果表明,可以达到目标的使用寿命50年,基于至少10倍于所提出的封装技术相对于当前构造方法的优异性能。;在本研究中,进行了寻找和图案化局部裂纹(尤其是车轮冲击疲劳裂纹)的尝试。这个问题是在实验程序的过程中进行研究的,该程序通过模拟反复施加载荷下混凝土中的车轮冲击载荷进行演示。经过特殊设计的标本被用来代表针对当前组件的橡胶片和聚氨酯密封系统提案。

著录项

  • 作者

    Farhang, Bahram.;

  • 作者单位

    Ryerson University (Canada).;

  • 授予单位 Ryerson University (Canada).;
  • 学科 Engineering Civil.
  • 学位 M.Sc.A.
  • 年度 2006
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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