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Microstructure Design of Tempered Martensite by Atomistically Informed Full-Field Simulation: From Quenching to Fracture

机译:原子态全场模拟回火马氏体的显微组织设计:从淬火到断裂

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摘要

Martensitic steels form a material class with a versatile range of properties that can be selected by varying the processing chain. In order to study and design the desired processing with the minimal experimental effort, modeling tools are required. In this work, a full processing cycle from quenching over tempering to mechanical testing is simulated with a single modeling framework that combines the features of the phase-field method and a coupled chemo-mechanical approach. In order to perform the mechanical testing, the mechanical part is extended to the large deformations case and coupled to crystal plasticity and a linear damage model. The quenching process is governed by the austenite-martensite transformation. In the tempering step, carbon segregation to the grain boundaries and the resulting cementite formation occur. During mechanical testing, the obtained material sample undergoes a large deformation that leads to local failure. The initial formation of the damage zones is observed to happen next to the carbides, while the final damage morphology follows the martensite microstructure. This multi-scale approach can be applied to design optimal microstructures dependent on processing and materials composition.
机译:马氏体钢是具有多种性能范围的材料类别,可以通过改变加工链来选择。为了以最小的实验努力来研究和设计所需的处理,需要建模工具。在这项工作中,使用单个建模框架模拟了从淬火,回火到机械测试的整个处理周期,该框架结合了相场方法和化学-机械方法的结合。为了执行机械测试,将机械零件扩展到大变形情况,并耦合到晶体可塑性和线性损伤模型。淬火过程由奥氏体-马氏体相变控制。在回火步骤中,碳偏析到晶界并形成渗碳体。在机械测试过程中,获得的材料样本会发生大变形,从而导致局部破坏。观察到损伤区的初始形成发生在碳化物旁边,而最终损伤形态遵循马氏体的微观结构。这种多尺度方法可以应用于根据工艺和材料成分设计最佳的微结构。

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