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Finite-Element Crystal Plasticity on Phase-Field Microstructures: Predicting Mechanical Response Variations in Ni-Based Single-Crystal Superalloys

机译:基相微观结构的有限元晶体塑性:预测基于Ni的单晶高温合金的机械响应变化

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摘要

The mechanical response of Ni-based single-crystal superalloys is known to be sensitive to the microstructural state, i.e., the shape and size of the gamma' precipitates when exposed to high-temperature conditions. The magnitude and sign of the natural lattice misfit between the gamma and gamma' phases play the most crucial role in establishing a controlled size, shape, and distribution of gamma' precipitates during heat treatments as well as in defining the direction of rafting, viz. the directional coalescence of the gamma' precipitates. In this study, a bottom-up scale bridging strategy of using phase-field informed finite-element (FE) crystal plasticity on realistic microstructures is followed to better understand the effect of the microstructural state on the macro-scale performance of a open < 001 >-oriented Ni-based single-crystal superalloy. Strain-controlled tensile tests using FE crystal plasticity were performed on a set of different microstructural states: cuboidal, rafted, and topologically inverted imported from 3D phase-field simulations. The study revealed that a cuboidal microstructure with a natural lattice misfit of - 0.004 is the most ductile. As observed experimentally, the microstructure with rafts perpendicular to the loading axis (N-type) is more ductile than the cuboidal one. The P-type microstructure, i.e., with rafts parallel to the loading axis, is found to have the lowest ductility, which was attributed to lesser dislocation mobility.
机译:已知基于Ni的单晶高温合金的机械响应对微观结构状态敏感,即γ'在暴露于高温条件时沉淀的形状和尺寸。伽玛和伽马阶段之间的天然格子误操作的幅度和迹象在热处理期间建立受控尺寸,形状和γ沉淀物的分布以及定义漂流的方向,伽马沉淀物中最重要的作用。 γ'沉淀的定向聚结。在这项研究中,使用基位通知有限元(Fe)晶体可塑性的自下而上的桥接策略在现实微观结构上进行,以便更好地了解微观结构状态对开放式<001的宏观性能的影响>基于Ni的单晶高级合金。在一组不同的微观结构状态下进行使用Fe晶体塑性的应变控制的拉伸试验:从3D相场模拟进口的立方体,褶皱和拓扑倒置。该研究表明,具有自然晶格错位的立方体微观结构 - 0.004是最大的延性。如实验所观察到的,与垂直于装载轴(n型)的筏的微观结构比立方体更具有更大的延展性。发现p型微结构,即用平行于装载轴的筏具有最低延展性,其归因于较小的位错迁移率。

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