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A crystal plasticity study of cyclic constitutive behaviour, crack-tip deformation and crack-growth path for a polycrystalline nickel-based superalloy

机译:多晶镍基高温合金循环本构行为,裂纹尖端变形和裂纹扩展路径的晶体塑性研究

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摘要

Crystal plasticity has been applied to model the cyclic constitutive behaviour of a polycrystalline nickel-based superalloy at elevated temperature using finite element analyses. A representative volume element, consisting of randomly oriented grains, was considered for the finite element analyses under periodic boundary constraints. Strain-controlled cyclic test data at 650 °C were used to determine the model parameters from a fitting process, where three loading rates were considered. Model simulations are in good agreement with the experimental results for stress–strain loops, cyclic hardening behaviour and stress relaxation behaviour. Stress and strain distributions within the representative volume element are of heterogeneous nature due to the orientation mismatch between neighbouring grains. Stress concentrations tend to occur within “hard” grains while strain concentrations tend to locate within “soft” grains, depending on the orientation of grains with respect to the loading direction. The model was further applied to study the near-tip deformation of a transgranular crack in a compact tension specimen using a submodelling technique. Grain microstructure is shown to have an influence on the von Mises stress distribution near the crack tip, and the gain texture heterogeneity disturbs the well-known butterfly shape obtained from the viscoplasticity analysis at continuum level. The stress–strain response near the crack tip, as well as the accumulated shear deformation along slip system, is influenced by the orientation of the grain at the crack tip, which might dictate the subsequent crack growth through grains. Individual slip systems near the crack tip tend to have different amounts of accumulated shear deformation, which was utilised as a criterion to predict the crack growth path.
机译:晶体可塑性已经被应用到有限元分析中,以模拟多晶镍基高温合金在高温下的循环本构行为。在周期性边界约束下,有限元分析被认为是由随机取向晶粒组成的代表性体积元。在650°C下使用应变控制的循环测试数据来确定拟合过程中的模型参数,其中考虑了三种加载速率。模型模拟与应力-应变环,循环硬化行为和应力松弛行为的实验结果非常吻合。由于相邻晶粒之间的方向不匹配,因此代表性体积元素内的应力和应变分布具有异质性。应力集中倾向于在“硬”晶粒内发生,而应变集中倾向于位于“软”晶粒内,这取决于晶粒相对于加载方向的方向。使用亚建模技术,将该模型进一步应用于研究紧凑拉伸试样中的跨晶裂纹的近尖端变形。晶粒的微观结构显示出对裂纹尖端附近的冯·米塞斯应力分布有影响,并且增益纹理的异质性在连续水平上扰乱了从粘塑性分析获得的众所周知的蝴蝶形状。裂纹尖端附近的应力应变响应以及沿滑移系统累积的剪切变形受裂纹尖端处晶粒取向的影响,这可能决定了随后晶粒中裂纹的扩展。裂纹尖端附近的各个滑移系统往往具有不同的累积剪切变形量,这被用作预测裂纹扩展路径的标准。

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