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首页> 外文期刊>Computer-Aided Civil and Infrastructure Engineering >Fatigue Crack Initiation and Propagation in Piles of Integral Abutment Bridges
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Fatigue Crack Initiation and Propagation in Piles of Integral Abutment Bridges

机译:整体式桥台桥桩的疲劳裂纹萌生与扩展

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摘要

A new continuum damage modeling approach of "successive initiation" is used to determine the location of a thermomechanical fatigue crack initiation and the propagation path and rate in piles of integral abutment bridges. A global-local modeling approach is introduced to determine the critical location in the pile where a crack is initiated using a 3-dimensional nonlinear finite element model and to implement "successive initiation. " A simulated case study is used to showcase the multistep procedure. The results indicate that for a pile subjected to the maximum stress, the first fatigue-induced crack initiates in the tip of the flange at the element immediately below the abutment. Several other cracks at different locations form in the flange of the pile while the initial crack continues to propagate in the flange to the web. The crack propagation rate increases as more cracks initiate in the flange. The propagation rate decreases when the crack reaches the web. Based on the case study presented, a crack could initiate in the pile in as little as 6 years, but it may take about 20 years for it to reach the web; however, final failure of the pile may not take place for several decades. The method can also be used as a guide in bridge foundation inspection and in the determination of the remaining life of an existing bridge.
机译:一种新的连续破坏建模方法“成功开始”用于确定热机械疲劳裂纹开始的位置以及整体桥台桩中的传播路径和速率。引入了全局局部建模方法,以确定桩中使用3维非线性有限元模型引发裂缝的关键位置并实施“成功引发”。通过模拟案例研究来展示多步过程。结果表明,对于承受最大应力的桩,由疲劳引起的第一个裂纹在基台正下方的单元的法兰尖端开始。在桩的凸缘中,在不同位置还形成了其他几个裂纹,而初始裂纹继续在凸缘中传播到腹板。随着更多的裂纹在法兰上产生,裂纹扩展速率增加。当裂纹到达腹板时,传播速率降低。根据提出的案例研究,裂缝可能在短短6年内就开始出现在桩中,但可能要花20年才能到达网上。但是,桩的最终失效可能不会发生数十年。该方法还可以用作桥梁基础检查和确定现有桥梁剩余寿命的指南。

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    Department of Civil and Environmental Engineering, University of Maryland, College Park, MD, USA;

    Department of Mechanical Engineering, University of Alabama, Tuscaloosa, AL, USA;

    Department of Civil and Environmental Engineering, University of Maryland, College Park, MD, USA;

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