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Microplasticity behavior study of equiaxed near-β titanium alloy under high-cycle fatigue loading: crystal plasticity simulations and experiments

机译:高循环疲劳载荷下等β钛合金等β近β钛合金的微观性行为研究:晶体塑性模拟与实验

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A crystal plasticity finite element (CPFE) model has been developed to study the microplasticity behavior of Ti-5553 alloy with equiaxed dual-phase microstructure under high-cycle fatigue (HCF) loading process. The microstructure and density distributions of geometrically necessary dislocations (GNDs) after HCF loading were characterized by electron backscattered diffraction (EBSD). Experimental results show that the microplasticity accumulation behavior happens in α phase during the HCF loading process. The developed CPFE model captures the essential physics of microplasticity accumulation in the primary α phase and stress concentration at the softer α/β interface. Besides, the effect of stress levels and volume fraction of primary α phase on microplasticity behavior was discussed. Results indicate that the stress concentration can be taken as fatigue indicator parameter (FIP) for high stress level HCF loading conditions, while the cumulative shear strain can be taken as FIP for low volume fraction of primary α phase conditions. This work provides a strategy not only contributing to understand the microplasticity behavior during HCF loading process but also choosing a suitable FIP for different loading conditions and microstructure states.
机译:已经开发了一种晶体塑性有限元(CPFE)模型来研究Ti-5553合金的微泡性能,在高循环疲劳(HCF)加载过程下等轴的双相微观结构。通过电子反向散射衍射(EBSD)表征了HCF负载后几何必要脱位(GNDS)的微观结构和密度分布。实验结果表明,在HCF加载过程中α相发生微泡性积累行为。开发的CPFE模型捕获了更软的α/β接口处的初级α相和应力浓度的微塑性积累的基本物理学。此外,还讨论了初级α相对微泡性能的应力水平和体积分数的影响。结果表明,应力浓度可以作为疲劳指示剂参数(FIP)作为高应力水平HCF负载条件,而累积剪切应变可以作为初级α相条件的低体积分数的FIP。这项工作提供了一种策略,不仅有助于了解HCF加载过程中的微泡性行为,还可以选择合适的加载条件和微观结构状态。

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