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首页> 外文期刊>Engineering Fracture Mechanics >Rail rolling contact fatigue dependence on friction, predicted using fracture mechanics with a three-dimensional boundary element model
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Rail rolling contact fatigue dependence on friction, predicted using fracture mechanics with a three-dimensional boundary element model

机译:轨道滚动接触疲劳对摩擦的依赖性,使用断裂力学和三维边界元模型进行预测

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摘要

Rolling contact fatigue crack growth continues to affect many railways worldwide. It is most often controlled through rail grinding in a preventive maintenance strategy, but to plan the required frequency and depth of grinding, prediction of crack growth rates has a vital role. This paper presents crack growth rate results from a new three-dimensional rail model containing an inclined surface breaking rolling contact fatigue crack. The calculations are based on a shear mode of crack growth, driven by the Hertzian contact pressure on the railhead and moderated by friction between the crack faces ("crack face friction"). The results from the model show good correlation with those from the previously published work in the area, with particularly good agreement at higher levels of surface friction coefficient. Applying the new model to a range of surface and crack face friction coefficients predicted that crack growth rate will rise with reduced internal crack face friction at all crack sizes. For small cracks (2 and 5 mm radius) rates were predicted to rise with increased surface traction, but this trend was reversed at larger crack sizes (10 and 19 mm radius). Identical trends were found when the modelling was repeated using the previously developed half-space based "2.5d" model, indicating that although this older model cannot represent the rail geometry its high speed means it remains a useful tool for investigating the effects of contact parameters on rail rolling contact fatigue. The next study in this area could therefore consider if there is a uniform or crack size related ratio for mapping 2.5d results to three-dimensional rail geometry to produce closer agreement in crack growth rates as well as trends. For the three-dimensional model, consideration of alternative crack morphologies and movement of the contact running band away from the rail centreline would provide additional data on the effect of rail grinding and re-profiling on rolling contact fatigue.
机译:滚动接触疲劳裂纹的增长继续影响着世界各地的许多铁路。在预防性维护策略中,通常通过轨道磨削对其进行控制,但是要计划所需的磨削频率和深度,预测裂纹扩展速率至关重要。本文介绍了一种新的三维轨道模型的裂纹扩展速率,该模型包含一个倾斜的表面破坏滚动接触疲劳裂纹。这些计算基于裂纹扩展的剪切模式,该剪切模式由导轨上的赫兹接触压力驱动,并通过裂纹面之间的摩擦(“裂纹面摩擦”)来缓和。该模型的结果显示出与该领域先前发表的研究的相关性很好,在较高的表面摩擦系数水平下具有特别好的一致性。将新模型应用于一系列表面和裂纹面摩擦系数后,可以预测,在所有尺寸的裂纹中,随着内部裂纹面摩擦力的减小,裂纹扩展速率将提高。对于小裂纹(半径2和5毫米),预计随着表面牵引力的增加速率会增加,但是在较大的裂纹尺寸(半径10和19毫米)下,这种趋势会逆转。当使用先前开发的基于半空间的“ 2.5d”模型重复进行建模时,发现了相同的趋势,这表明尽管此较旧的模型无法表示轨道几何形状,但其高速意味着它仍然是研究接触参数影响的有用工具对轨道滚动接触疲劳。因此,该领域的下一个研究可以考虑是否存在将2.5d结果映射到三维轨道几何形状以在裂纹扩展率和趋势方面达成更一致的一致或与裂纹尺寸相关的比率。对于三维模型,考虑替代裂纹形态和接触运行带远离轨道中心线的移动,将提供有关轨道磨削和重新成型对滚动接触疲劳的影响的其他数据。

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