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Influence of white etching layer on rolling contact behavior at wheel-rail interface

机译:白色蚀刻层对轮轨接口滚动接触行为的影响

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The existence of narrow and brittle white etching layers (WELs) on the rail surface is often linked with the formation of rail defects such as squats and studs, which play the key roles in rail surface degradation and tribological performance. In the present study, a systematic investigation on stress/strain distribution and fatigue life of the WEL during wheel-rail rolling contact was conducted based on a numerical model considering the realistic wheel geometry. This is the first study considering the influence of rail materials, loading pressure, frictional condition, WEL geometry ( a/b ), and slip ratio (Sr) in the practical service conditions at the same time. The results revealed much higher residual stress in WEL than in rail matrix. Stress changes along the rail depth matched with the previously reported microstructure evolutions. The current work revealed that the maximum difference in contact stress between the wheel passages of rail matrix and the WEL region (noted as stress variation) rises with the increase of loading pressure, the value of a/b , and Sr; but drops with the friction coefficient ( μ ). In addition, a critical length-depth ratio of 5 for a/b has been found. The fatigue parameter, FP, of the WEL decreased quickly with the length-depth ratio when it was less than 5 and then increased slightly when it was larger than 5. This study also revealed that the fatigue life of the WEL was reduced for high strength head hardened (HH) rail compared with standard carbon (SC) rail.
机译:轨道表面上的窄和脆性白色蚀刻层(螺杆)的存在通常与轨道缺陷的形成相连,例如蹲伏和螺柱,这在轨道表面降低和摩擦学性能中起着关键作用。在本研究中,基于考虑现实轮几何形状的数值模型进行了对滚轮滚动接触期间WER的应力/应变分布和疲劳寿命的系统研究。这是考虑到轨道材料,装载压力,摩擦条件,WEL几何(A / B)的影响的第一项研究同时在实际服务条件下的应用。结果表明,在轨道基质中,剩余应力大得多。沿着轨道深度与先前报道的微观结构演进相匹配的钢轨深度的压力变化。目前的工作表明,轨道矩阵和WEL区域的车轮通道之间的接触应力之间的最大差异随着负载压力的增加,A / B和SR的值而上升;但滴落摩擦系数(μ)。另外,已经找到了A / B的临界长度比为5。 WER的疲劳参数FP,随着长度的比例少于5,当它大于5时略微增加,略微增加。这项研究还透露,高强度降低了WEL的疲劳寿命与标准碳(SC)导轨相比,头部硬化(HH)轨道。

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