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首页> 外文期刊>International Journal of Fatigue >Numerical investigation of crack initiation in rails and wheels affected by martensite spots
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Numerical investigation of crack initiation in rails and wheels affected by martensite spots

机译:马氏体点对钢轨和车轮裂纹萌生的数值研究

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摘要

White etching layers (WELs) in the form of thermally induced martensite spots are often associated to so-called stud defects on rail surfaces and so-called rolling contact fatigue clusters on wheel treads. These defects might promote further material deterioration of rails and wheels and it is thus of importance to deepen the knowledge regarding their initiation mechanisms. The aim of this study is to gain insight into the problem by making qualitative assessments of different operational scenarios, involving various axle loads and amount of friction. To this end, this paper considers crack initiation, quantified through the Jiang–Sehitoglu low cycle fatigue criterion, in the vicinity of pre-existing WELs (in the form of martensite spots) subjected to varying contact load conditions. Three-dimensional finite element analyses are conducted to model phase transformations as well as the resulting residual stresses. It is seen that the contact pressure magnitude and WEL thickness affect the results only moderately, while the traction coefficient has a significant detrimental influence. It is furthermore seen that occasional wheel passages that are off-set in the lateral direction with respect to the WEL spot’s centre might be responsible for crack initiation on the gauge corner side of the rail surface.
机译:热致马氏体斑点形式的白色蚀刻层(WEL)通常与钢轨表面上的所谓柱头缺陷以及车轮胎面上的所谓滚动接触疲劳簇有关。这些缺陷可能会进一步加剧钢轨和车轮的材料劣化,因此加深有关其起爆机理的知识非常重要。这项研究的目的是通过对涉及不同轴负载和摩擦量的不同操作场景进行定性评估,以深入了解问题。为此,本文考虑了通过江-西图格鲁低循环疲劳准则量化的裂纹萌生,该裂纹萌生于处于不同接触载荷条件下的既有WEL(以马氏体点的形式)附近。进行了三维有限元分析,以模拟相变以及由此产生的残余应力。可以看出,接触压力的大小和WEL的厚度只对结果有中等程度的影响,而牵引系数则有很大的不利影响。此外还可以看到,相对于WEL点中心在横向方向上偏移的车轮偶尔穿过可能会导致在轨面规范角侧产生裂纹。

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