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Analysis of Fatigue Crack Propagation of an Orthotropic Bridge Deck Based on the Extended Finite Element Method

机译:基于延长有限元法的正交桥甲板疲劳裂纹裂纹分析

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As one of the most fatigue-sensitive parts of an orthotropic steel bridge deck, the weld between the U-rib and the top deck is prone to fatigue cracking under the actions of the stress concentration, welding residual stress, and vehicle load. To investigate the mechanism of fatigue crack propagation and the influence of the welding residual stress on the propagation patterns of fatigue cracks, a multiscale modeling method was proposed, and the static analysis and the dynamic propagation analysis of fatigue crack were carried out in this paper. First, a multiscale finite element model was established, including whole bridge models with a scale feature of 102?m, orthotropic bridge deck models with a scale feature of 100?m, and crack models with a scale feature of 10?3?m. Then, a segmental model of the bridge deck was extracted, which is regarded as a critical location of the bridge, and the shell-solid coupling method is adopted in the segmental model in order to further analyze the crack propagation rule. Moreover, based on the extended finite element method (XFEM), the static crack and dynamic crack propagation in this critical position were analyzed. Finally, thermoelastoplastic analysis was carried out on the connection of the U-rib and deck with a length of 500?mm to obtain the residual stress, and then the results of residual stress were introduced into the segmental model to further study its influence on the evolution of fatigue crack propagation. The analysis of the welding process shows that near the weld region of the connection of the U-rib and deck, the peak value of the residual tensile stress can reach the material yield strength. The static analysis of fatigue cracks shows that under the single action of a standard fatigue vehicle load, the fatigue details at the weld toe of the deck cannot reach the tensile stress required for fatigue crack propagation, and only the fatigue details at the weld toe of the U-rib can meet the requirements of fatigue crack propagation. The dynamic analysis of fatigue cracks reveals that the crack in the weld toe of the U-rib is a mixed-mode crack with modes I, II, and III. The propagation of a fatigue crack without a residual stress field will be terminated until the crack length is extended to a certain length. Nevertheless, when the residual stress field was introduced, the growth angle and size of the fatigue crack would increase, and no crack closure occurs. For the crack in the weld toe of the deck, the crack is in the closed state under the standard fatigue vehicle load. When the residual stress field is introduced, the tensile stress of the fatigue details increases. Meanwhile, the fatigue crack will become a mixed-mode crack with modes I, II, and III that will be dominated by mode I and extend toward the weld at a slight deflection angle. The results of various initial crack sizes at the weld toes of the top deck are analyzed, which shows that the initial crack size has a certain effect on the fatigue crack growth rate, especially the initial crack depth.
机译:作为正交钢桥甲板的最疲劳敏感部件之一,U形肋和顶层甲板之间的焊缝在应力集中,焊接残余应力和车辆载荷的作用下容易发生疲劳裂缝。为了研究疲劳裂纹传播的机制和焊接残余应力对疲劳裂缝的传播模式的影响,提出了一种多尺度建模方法,本文进行了静态分析和疲劳裂纹的动态传播分析。首先,建立了多尺度有限元模型,包括整个桥梁模型,具有102·m的刻度特征,正向桥梁模型,具有100Ω·m的刻度特征,裂缝模型为10?3?m。然后,提取桥式甲板的分段模型,被认为是桥的临界位置,并且在分段模型中采用壳固耦合方法,以进一步分析裂缝传播规则。此外,基于扩展有限元方法(XFEM),分析了该关键位置中的静态裂纹和动态裂纹传播。最后,在U形肋和甲板的连接上进行热弹性分析,其长度为500Ωmm以获得残余应力,然后将残余应力的结果引入分段型,以进一步研究其对其影响疲劳裂纹繁殖的演变。焊接过程的分析表明,靠近U形肋和甲板的连接的焊接区域,残留拉应力的峰值可以达到材料屈服强度。疲劳裂缝的静态分析表明,在标准疲劳车载的单一作用下,甲板焊接脚趾的疲劳细节不能达到疲劳裂纹繁殖所需的拉伸应力,并且只有焊接脚趾的疲劳细节U形肋可以满足疲劳裂纹繁殖的要求。疲劳裂缝的动态分析表明,U形肋的焊接脚趾中的裂缝是含有模式I,II和III的混合模式裂纹。在没有残留应力场的情况下终止疲劳裂缝的传播,直到裂缝长度延伸到一定长度。然而,当引入残余应力场时,疲劳裂纹的生长角度和大小会增加,并且不会发生裂缝闭合。对于甲板的焊接脚趾的裂缝,裂缝在标准疲劳载荷负载下处于关闭状态。当介绍残余应力场时,疲劳细节的拉伸应力增加。同时,疲劳裂缝将成为模具I,II和III的混合模式裂纹,其将由模式I支配并以轻微的偏转角朝向焊接延伸。分析了顶层甲板焊接脚趾的各种初始裂纹尺寸的结果,表明初始裂纹尺寸对疲劳裂纹生长速率有一定影响,尤其是初始裂缝深度。

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