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Large-scale three-dimensional phase field simulation of γ ′-rafting and creep deformation

机译:γ-漂流和蠕变变形的大规模三维相场模拟

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摘要

Three-dimensional phase field simulations of coupled γ/γ ′ microstructural evolution and plastic deformation in single crystal Ni-Al are carried out at micrometer scales. Coherent γ/γ ′ microstructures and plastic deformation in γ-channels are described using a single, consistent methodology based on Khachaturyan's phase field microelasticity approach to coherent precipitates and dislocations. In particular, a new set of phase fields is introduced to characterize local density of dislocations from individual active slip systems. To increase the length scale of the phase field simulations, the Kim-Kim-Suzuki (KKS) treatment of γ/γ ′ interfaces was adopted. The rafting kinetics, precipitate-matrix inversion process and the corresponding creep deformation are characterized with respect to parameters such as applied stress and lattice misfit. The simulation results on γ ′-rafting kinetics and morphological evolution of the γ/γ ′ microstructures are compared with available experiment. The model can be used to carry out parametric studies of the effects of material and processing parameters such as alloy composition, external stress and working temperature on γ ′-rafting kinetics, morphological evolution and the corresponding creep deformation.
机译:在微米尺度上进行的单相镍铝合金中的γ/γ耦合微结构演化和塑性变形的三维相场模拟。使用基于Khachaturyan相场微弹性方法相干沉淀和位错的单一,一致的方法描述了相干的γ/γ微观结构和γ通道中的塑性变形。特别是,引入了一组新的相场来表征来自单个活动滑移系统的位错的局部密度。为了增加相场模拟的长度尺度,采用了Kim / Kim-Suzuki(KKS)处理γ/γ介面的方法。漂流动力学,沉淀物-基质反演过程和相应的蠕变变形是根据诸如施加应力和晶格失配等参数来表征的。 γ/γδ微观结构的γδ漂流动力学和形态演化的模拟结果与可用的实验进行了比较。该模型可用于进行材料和加工参数(例如合金成分,外部应力和工作温度)对β-漂流动力学,形态演变和相应的蠕变变形的影响的参数研究。

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