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Micromechanical modeling and calculation for diffraction elastic constants of Ni-based superalloy

机译:Ni基超合金衍射弹性常数的微机械建模与计算

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A micromechanical model for Ni-based superalloys with reinforcement γ′-Ni 3 (AlTi) was established to investigate the elastic modulus related to crystallographic directions. In this model, grains were assumed to have spheroidal random dispersion, and the interface of matrix and inclusion phases with lattice strain and macroscopic stress being assumed were straightforwardly converted. Introducing a representative volume element, a series of micromechanical averaged field equations administrating diffraction elastic constants of the γ-(Ni–Cr–Fe) matrix phase and the γ′-Ni 3 (AlTi) dispersed particulate phase are presented to render qualitative and quantitative analysis in terms of scale transition formalism, respectively. Following the content of the micromechanical framework, the effective elastic properties of Ni-based superalloys were predicted. Furthermore, the numerical diffraction elastic constants of several diffraction planes were compared with those of experimental determination by neutron diffraction, whose implications of diffraction elastic constants required for experimental measurement of residual stresses were discussed.
机译:建立了一种具有增强γ'-Ni 3(ALTI)的Ni基超合金的微机械模型,以研究与晶体方向相关的弹性模量。在该模型中,假设晶粒具有球形随机分散体,并且假设具有晶格菌株的包涵阶段的界面和被假定的宏观应力被简单地转换。引入代表性体积元素,提出了一系列γ-(Ni-CR-Fe)基质和γ-Ni 3(ALTI)分散的颗粒相的衍射弹性常数的一系列微机械平均场方程,以定义和定量分别分析规模过渡形式主义。在微机械框架的含量之后,预测了Ni基超合金的有效弹性性能。此外,将几个衍射平面的数值衍射弹性常数与中子衍射进行比较,其讨论了实验测量残余应力所需的衍射弹性常数的影响。

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