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Coupling phase field and viscoplasticity to study rafting in Ni-based superalloys

机译:耦合相场和粘塑性研究镍基高温合金的漂流

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摘要

An elasto-viscoplastic model is developed to study the microstructural evolution during creep loading in a model AM1 superalloy. Elastic anisotropy and inhomogeneity, as well as the description of long-range order in the gamma' phase, are included in the model. Plastic activity is introduced using a continuum crystal plasticity framework at the mesoscale. Special attention is paid to the corresponding parameter identification from experiments. Two-dimensional simulations of creep in the [100] direction are performed, and the results are compared to the predictions of an elastic phase field model, in order to characterize the influence of plastic activity on the microstructural evolution. In particular, our simulations show that plastic activity in the gamma channels significantly increases the rafting kinetics and allows misalignments of rafts with respect to cubic directions. The simulation results are critically discussed and improvements to the model are proposed.
机译:建立了弹黏塑性模型,以研究AM1模型高温合金在蠕变载荷过程中的微观结构演变。该模型包括弹性各向异性和非均质性,以及对γ'相中远距离顺序的描述。使用中尺度的连续晶体可塑性框架引入可塑性活动。要特别注意实验中相应的参数识别。进行了[100]方向蠕变的二维模拟,并将结果与​​弹性相场模型的预测进行了比较,以表征塑性活动对微观结构演变的影响。特别地,我们的模拟表明,伽马通道中的塑性活动显着增加了漂流动力学,并允许筏相对于立方方向的未对准。对仿真结果进行了严格的讨论,并对模型进行了改进。

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