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Effect of Carbon Content on Toughness of Tempered Martensitic Steels Analyzed by Toughness Prediction Model

机译:用韧性预测模型分析碳含量对回火马氏体钢韧性的影响

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To evaluate the effect of carbon content on the toughness of tempered martensite, the critical crack tip opening displacement (CTOD) was evaluated for 0.1/0.3/0.5C-1.5Mn-1.0Mo (mass%) steels. The critical CTOD was the highest for 0.5C steel because of grain refinement rather than strengthening and cementite coarsening. The results were analyzed by a toughness prediction model that considered the strength, grain size, and cementite size. This model incorporated the microstructure information, stress distribution calculated using the finite element method (FEM), and fracture process criteria. It calculated the fracture point at which the local stress and local strength of the material correspond. The fracture process was divided into the following three stages: Stage Ⅰ, cementite cracking; Stage Ⅱ, microcrack propagation into the cementite and ferrite boundary by stress concentration caused by dislocation pileup along the major axis of the martensite block; and Stage Ⅲ, crack propagation into the first intersecting 15-oriented boundary with the crack length of the minor axis of the martensite block. The model calculation reflected experimental trends, revealing that the bottleneck in the fracture process was Stage Ⅲ. Therefore, the refinement of the minor axis of the block was effective for toughness improvement.
机译:为了评估碳含量对回火马氏体韧性的影响,对0.1 / 0.3 / 0.5C-1.5Mn-1.0Mo(质量%)钢的临界裂纹尖端开口位移(CTOD)进行了评估。 0.5C钢的临界CTOD最高,因为其晶粒细化而不是强化和渗碳体粗化。通过考虑强度,晶粒尺寸和渗碳体尺寸的韧性预测模型对结果进行了分析。该模型结合了微结构信息,使用有限元方法(FEM)计算的应力分布以及断裂过程准则。它计算了材料的局部应力和局部强度对应的断裂点。断裂过程分为以下三个阶段:第一阶段,渗碳体开裂;第二阶段,渗碳体开裂。第二阶段,由于位错堆积沿马氏体长轴引起的应力集中,微裂纹向渗碳体和铁素体边界扩展;第三阶段,裂纹以马氏体块短轴的裂纹长度向第15相交的第一个交界处扩展。模型计算反映了实验趋势,揭示了断裂过程的瓶颈是Ⅲ期。因此,细化块的短轴对于提高韧性是有效的。

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