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Microstructural evolution of Mn-based maraging steels and their influences on mechanical properties

机译:Mn基马氏体时效钢的组织演变及其对力学性能的影响

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The microstructural evolution in a set of Mn-based maraging steels (7-12 wt% Mn) when aged at 460-500 ℃ for various durations up to 10,080 min and the influences on mechanical properties are systematically investigated. The improved yield strength of peak-aged samples is attributed to the formation of Ni_2TiAl precipitates and the precipitation strengthening is governed by Orowan mechanism. Segregation of Mn at grain boundaries in the initial aging stage resulted in severe intergranular brittleness. During further aging, accumulated Mn segregation leading to the formation of ductile lath-like reverted austenite removed the embrittlement and significantly improved the ductility. In the overaged condition, the steady work hardening after yielding compensates the loss of yield strength resulting from the coarsening of precipitates and softening of α'-martensite matrix. There was only limited evidence of the TRIP effect in the reverted austenite, indicating that work hardening was associated with other deformation mechanisms. Increasing the aging temperature or the Mn content of alloy that promotes austenite reversion was demonstrated to accelerate the improvement of ductility.
机译:系统研究了一组锰基马氏体时效钢(Mn 7-12 wt%Mn)在460-500℃时效长达10,080 min时效时的显微组织演变及其对力学性能的影响。峰值时效样品的屈服强度提高归因于Ni_2TiAl析出物的形成,且析出强化受Orowan机理的控制。 Mn在初始时效阶段在晶界处偏析导致严重的晶间脆性。在进一步时效过程中,积累的Mn偏析导致形成延性板条状回复奥氏体,消除了脆性,并​​显着改善了延性。在过时状态下,屈服后的稳定工作硬化补偿了由于析出物的粗化和α'-马氏体基体的软化而导致的屈服强度的损失。还原奥氏体中只有TRIP效应的证据有限,表明加工硬化与其他变形机制有关。已证明,提高时效温度或促进奥氏体回复的合金中Mn含量可促进延展性的提高。

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