首页> 外文期刊>Journal of Tribology >Cyclic Constitutive Response and Effective S-N Diagram of M50 NiL Case-Hardened Bearing Steel Subjected to Rolling Contact Fatigue
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Cyclic Constitutive Response and Effective S-N Diagram of M50 NiL Case-Hardened Bearing Steel Subjected to Rolling Contact Fatigue

机译:M50 NiL强化轴承钢滚动接触疲劳的循环本构响应和有效S-N图。

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摘要

A combined experimental and numerical method is developed to estimate the continuously evolving cyclic plastic strain amplitudes in plastically deformed subsurface regions of a case-hardened M50 NiL steel rod subjected to rolling contact fatigue (RCF) over several hundred million cycles. The subsurface hardness values measured over the entire plastically deformed regions and the elastoplastic von Mises stresses determined from the three-dimensional (3D) Hertzian contact finite element (FE) model have been used in conjunction with Neuber's rule to estimate the evolved cyclic plastic strain amplitudes at various points within the RCF-affected zone. The cyclic stress-strain plots developed as a function of case depth revealed that cyclic hardening exponent of the material is greater than the monotonic strain-hardening exponent. Effective S-N diagram for the RCF loading of the case-hardened steel has been presented and the effect of compressive mean stress on its fatigue strength has been explained using Haigh diagram. The compressive mean stress correction according to Haigh diagram predicts that the allowable fatigue strength of the steel increases by a factor of two compared to its fatigue limit before mean stress correction, thus potentially allowing the rolling element bearings to operate over several hundred billion cycles. The methodology presented here is generalized and can be adopted to obtain the constitutive response and S-N diagrams of both through-and case-hardened steels subjected to RCF.
机译:开发了一种组合的实验和数值方法来估计经过数亿次循环滚动滚动疲劳(RCF)的表面硬化M50 NiL钢棒塑性变形次表面区域中连续演变的循环塑性应变幅度。在整个塑性变形区域上测得的亚表面硬度值以及根据三维(3D)赫兹接触有限元(FE)模型确定的弹塑性冯·米塞斯应力已与诺伊伯规则一起用于估算演化的循环塑性应变幅度在RCF影响区域内的各个位置。根据表面深度变化的循环应力-应变图显示,材料的循环硬化指数大于单调应变硬化指数。给出了用于表面硬化钢的RCF载荷的有效S-N图,并使用Haigh图解释了压缩平均应力对其疲劳强度的影响。根据Haigh图进行的压缩平均应力校正可以预测,与平均应力校正之前的疲劳极限相比,钢的容许疲劳强度增加了两倍,因此有可能使滚动轴承运行超过数千亿次。本文介绍的方法是通用的,可用于获得经过RCF的直通和表面硬化钢的本构响应和S-N图。

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