考虑微观结构的切向力对钢轨滚动接触疲劳影响研究

Mohamad Ghodrati, M. Ahmadian, R. Mirzaeifar
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引用次数: 0

摘要

本文研究了大牵引力作用下滚动接触疲劳损伤产生和扩展的微观力学机制。本研究为钢轨滚动接触疲劳研究提供了一个三维模型。由于滚动接触疲劳高度依赖于钢轨的微观结构行为,因此需要一种适当的3D方法来捕获微观结构和取向相关的力学行为。一种被称为晶体塑性的精确材料模型被用于此目的。此外,采用内聚区方法捕捉裂纹在晶界处的萌生和扩展过程。利用为本研究开发的三维有限元模型,我们评估了各种参数(如沿轨牵引力和法向力)对RCF响应的影响。结果表明,RCF裂纹在钢轨表面略以下处萌生。当接触力在重复载荷循环中施加时,这些裂纹开始向轨道表面传播。结果还表明,RCF开始的深度取决于纵向牵引力与法向载荷之间的比率。在较大的牵引力下,裂纹在轨道表面附近开始,而较大的正常载荷则促进表面以下的裂纹开始。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Studying the Effect of Tangential Forces on Rolling Contact Fatigue in Rails Considering Microstructure
In this paper, the micro-mechanical mechanisms behind the initiation and propagation of rolling contact fatigue (RCF) damages caused by the large traction forces are investigated. This study provides a three-dimensional (3D) model for studying the rolling contact fatigue in rails. Since rolling contact fatigue is highly dependent on the rail’s steel microstructure behavior, a proper 3D approach to capture the microstructure- and orientation-dependent mechanical behavior is required. A precise material model known as crystal plasticity is used for this purpose. Additionally, a cohesive zone approach is implemented to capture the crack initiation and propagation at the grain boundaries. Using the 3D finite element model which is developed for this study, we evaluate the effect of various parameters such as traction forces along the rail, and also the normal forces on the RCF response. The results reveal that the RCF cracks initiate slightly below the rail surface. These cracks start propagating toward the rail surface when the contact force is applied in repeated load cycles. The results also indicate that the depth at which RCF initiates depends on the ratio between the longitudinal traction forces and the normal loads. With larger traction forces, the cracks initiate closer, or at the rail surface, whereas larger normal loads promote the cracks initiation beneath the surface.
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