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Modeling fatigue crack nucleation at primary inclusions in carburized and shot-peened martensitic steel

机译:模拟渗碳和喷丸马氏体钢中主要夹杂物的疲劳裂纹成核

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摘要

The mechanics of high cycle fatigue crack nucleation (formation of a stable crack that can grow away from the influence of the notch root of the inclusion) at subsurface primary inclusions in carburized and shot-peened martensitic steel subjected to cyclic bending is investigated using three-dimensional (3D) finite element (FE) analysis. FE models are constructed using a voxellation technique to address the shape, size, and distribution of primary inclusions within clusters. The critical depth for fatigue crack nucleation is predicted considering the gradient in material properties arising from carburization, pre-strain and compressive residual stress distribution due to shot peening, and the gradient of applied bending stress. The influence of inclusion shape and interface condition (intact or debonded) with the matrix on the driving force for fatigue crack nucleation is examined. It is observed that the inclusion shape has minimal influence on the predicted results while the effect of the interface condition is quite significant. For partially debonded interfaces, the predicted critical depth from surface for fatigue crack nucleation agrees qualitatively with experimental observations.
机译:在渗碳和喷丸处理的马氏体钢中,经历了周期性弯曲的过程中,研究了地下次生夹杂物的高周疲劳裂纹成核机理(可形成稳定的裂纹,可消除夹杂物的缺口根的影响)。三维(3D)有限元(FE)分析。有限元模型是使用体素技术构建的,以解决簇中主要包裹体的形状,大小和分布。考虑渗碳引起的材料性能梯度,喷丸硬化引起的预应变和压缩残余应力分布以及施加的弯曲应力梯度,可预测疲劳裂纹成核的临界深度。研究了夹杂物形状和与基体的界面状态(完整或脱粘)对疲劳裂纹成核驱动力的影响。可以看出,夹杂物形状对预测结果的影响很小,而界面条件的影响却非常明显。对于部分脱胶的界面,疲劳裂纹成核的预测表面临界深度与实验观察在质量上是一致的。

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