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Experimental and numerical analysis of sub-surface cracks in railway wheels

机译:铁路车轮次表面裂纹的实验与数值分析

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Shelling is the term used to describe the loss of part of the tread of a railway wheel as the result of the initiation and growth of a fatigue crack from an internal defect in the rim. Shelling makes the wheel unserviceable and to prevent it. railway wheels are periodically subjected to non-destructive testing. However in order to assess the criticality of any cracks found, it is necessary to know the modes I, II and III stress intensity factors of the crack. In this paper a versatile approach for the analysis of internal cracks in wheels under Hertzian loads is described. It is based on the analytical calculation of the displacement field in the wheel and on imposing it as boundary condition in a finite element analysis of the wheel zone close to the crack. Experimental tests were executed on photoelastic models to validate the results. A new technique was developed to naturally obtain an internal crack in the epoxy resin model. The stress-freezing technique was employed to elaborate the photoelastic fringes and to obtain the stress intensity factors. The numerical and the experimental results are critically discussed and their comparison shows an interesting and encouraging agreement.
机译:脱壳是一个术语,用于描述由于轮辋内部缺陷引起的疲劳裂纹的产生和增长而导致的铁路车轮胎面部分的损失。脱壳会使车轮无法维修并加以防止。定期对车轮进行无损检测。但是,为了评估发现的任何裂纹的临界性,有必要知道裂纹的I,II和III型应力强度因子。本文介绍了一种用于分析赫兹载荷下车轮内部裂纹的通用方法。它基于车轮中位移场的解析计算,并将其作为边界条件施加在靠近裂纹的车轮区域的有限元分析中。在光弹性模型上进行了实验测试以验证结果。开发了一种新技术,可以自然地在环氧树脂模型中获得内部裂缝。采用应力冻结技术对光弹条纹进行精细化处理,并获得应力强度因子。严格讨论了数值和实验结果,它们的比较显示出有趣而令人鼓舞的共识。

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