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Deformation Mechanisms Coupled with Phase Field and Crystal Plasticity Modeling in a High-Temperature Polycrystalline Ni-Based Superalloy

机译:高温多晶硅Ni高温合金中的相场和晶体塑性建模耦合的变形机制

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Physics-based modeling of disk superalloys is inherently complex due to the strong influence of microstructure on properties, as well as the multitude of deformation mechanisms operative at elevated temperatures. The present contribution will focus on the effects of monotonic and cyclic loading conditions, and the underlying deformation mechanisms will be discussed. Detailed substructure analysis of deformed specimens was conducted with scanning transmission electron microscopy diffraction-contrast methods. These characterization efforts have led to a series of phase field simulations in which the interaction of various deformation modes with experimentally measured precipitate configurations can be explored and critical parameters quantified. Additionally, these results have been incorporated into a novel, dislocation-densitybased crystal plasticity model that has been calibrated based on a single crystal response, and enables the computationally efficient modeling of polycrystalline behavior.
机译:由于微观结构对性质的强烈影响,基于物理基础的盘式超合金建模是固有的复杂性,以及在升高温度下操作的众多变形机制。本贡献将重点关注单调和循环负载条件的影响,并讨论潜在的变形机制。用扫描透射电子显微镜衍射 - 对比度进行扫描透射型试样的详细次结构分析。这些表征工作已经导致了一系列相场模拟,其中可以探索各种变形模式与实验测量的沉淀配置的相互作用和量化的临界参数。另外,这些结果已被纳入新颖的脱位密度基于晶体塑性模型,该晶体塑性模型已经基于单晶响应校准,并实现了多晶行为的计算有效建模。

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