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A NEW PROCESS FOR IMPARTING FATIGUE DAMAGE RESISTANCE TO RAILWAY AXLES

机译:赋予铁路轴抗疲劳损伤的新方法

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Since the beginning of the railway industry, one of the most serious mechanical failures of critical components has been the fatigue failure of axles. About half of these fatigue failures initiate in the axle's main body between the wheel seats due to surface damage and about half initiate in the wheel seat and journal filet areas due to corrosion and fretting. Fatigue cracks in the axle body almost always initiate at surface damage such as scratches, dents, and gouges (e.g., due to ballast impact, improper handling, etc.) where bending stresses are greatest. Efforts to improve axle fatigue life have focused on developing new, more fatigue-resistant steel grades; increasing the body diameter to reduce operating stresses; and modifying the properties (most notably near the axle surface) of the steel through heat treatment. The new process described in this paper improves an axle's resistance to fatigue failure by imparting a refined microstructure and beneficial compressive residual stress to just the body without additional alloy enhancements or design changes. A 35% increase in fatigue strength and 47% increase in near-surface yield strength over standard Grade F axles have been obtained while also achieving modest improvements in ductility.
机译:自铁路行业开始以来,关键部件最严重的机械故障之一就是车轴的疲劳故障。这些疲劳故障中约有一半是由于表面损坏而在轮毂之间的轮轴主体中引起的,而约有一半是由于腐蚀和微动磨损而在轮毂和轴颈内陷的区域中引起的。轴体上的疲劳裂纹几乎总是在表面损伤时产生,例如刮擦,凹痕和凿痕(例如,由于压载物的撞击,处理不当等导致的弯曲应力最大)。改善车轴疲劳寿命的努力集中在开发新的,更耐疲劳的钢种上。增加阀体直径以减少工作压力;通过热处理改变钢的性能(最明显的是靠近车轴表面)。本文所述的新工艺通过在不附加合金增强或设计更改的情况下,仅向车身赋予精细的微结构和有益的压缩残余应力,从而提高了车轴的抗疲劳破坏能力。与标准的F级车轴相比,疲劳强度提高了35%,近表面屈服强度提高了47%,同时延展性也得到了适度的提高。

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