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首页> 外文期刊>Journal of the Mechanics and Physics of Solids >Coupling the Phase Field Method for diffusive transformations with dislocation density-based crystal plasticity: Application to Ni-based superalloys
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Coupling the Phase Field Method for diffusive transformations with dislocation density-based crystal plasticity: Application to Ni-based superalloys

机译:基于位错密度的晶体塑性的扩散相变相场方法的耦合:在镍基高温合金中的应用

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摘要

A phase field model is coupled to strain gradient crystal plasticity based on dislocation densities. The resulting model includes anisotropic plasticity and the size-dependence of plastic activity, required when plasticity is confined in region below few microns in size. These two features are important for handling microstructure evolutions during diffusive phase transformations that involve plastic deformation occurring in confined areas such as Ni-based superalloys undergoing rafting. The model also uses a storage-recovery law for the evolution of the dislocation density of each glide system and a hardening matrix to account for the short-range interactions between dislocations. First, it is shown that the unstable modes during the morphological destabilization of a growing misfitting circular precipitate are selected by the anisotropy of plasticity. Then, the rafting of γ' precipitates in a Ni-based superalloy is investigated during [100] creep loadings. Our model includes most of the important physical phenomena accounted for during the microstructure evolution, such as the presence of different crystallographic γ' variants, their misfit with the γ matrix, the elastic inhomogeneity and anisotropy, the hardening, anisotropy and viscosity of plasticity. In agreement with experiments, the model predicts that rafting proceeds perpendicularly to the tensile loading axis and it is shown that plasticity slows down significantly the evolution of the rafts.
机译:基于位错密度,将相场模型耦合到应变梯度晶体可塑性。所得模型包括各向异性可塑性和塑性活动的尺寸依赖性,这是将塑性限制在几微米以下的区域时所需的。这两个特征对于处理弥散相变过程中的微观结构演变非常重要,这些相变过程涉及在有限区域(例如进行漂流的镍基高温合金)中发生的塑性变形。该模型还使用存储-恢复定律,用于每个滑移系统的位错密度的演变和硬化矩阵,以说明位错之间的短程相互作用。首先,表明通过可塑性各向异性来选择增长的失配圆形沉淀物的形态失稳过程中的不稳定模式。然后,研究了在[100]蠕变载荷过程中γ'沉淀物在镍基高温合金中的逸出。我们的模型包括微观结构演化过程中造成的大多数重要物理现象,例如存在不同的晶体学γ'变体,它们与γ基体的不匹配,弹性非均质性和各向异性,硬化性,各向异性和可塑性。与实验一致,该模型预测漂流垂直于拉伸载荷轴进行,并且表明可塑性显着减慢了筏的演变。

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