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Cross-sectional nano-indentation of ion-irradiated steels: Finite element simulations based on the strain-gradient crystal plasticity theory

机译:离子照射钢的横截面纳米凹部:基于应变梯度晶体塑性理论的有限元模拟

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In this work, the cross-sectional nano-indentation of ion-irradiated steels is simulated by the crystal plasticity finite element method. Two dominant features, including the non-uniform irradiation hardening and indentation size effect, are characterized by considering the influence of inhomogeneously distributed irradiation defects and geometrically necessary dislocations within the framework of strain-gradient crystal plasticity theory. The theoretical model is applied for ion-irradiated 304 stainless steel. Both the fitted and predicted macroscopic mechanical responses are compared with experimental data under different irradiation conditions, which include the force-depth (F - h) and hardness-depth (H - h) relationships under surface nano-indentation, and hardness as a function of the distance from the irradiated sample surface (H - x) under cross-sectional nano-indentation. A good agreement is achieved that can validate the rationality and accuracy of the proposed model. Furthermore, the three-dimensional relationship of H - x - h is analyzed under cross-sectional nano-indentation, which indicates that the hardness of ion-irradiated materials depends on both the distribution of defect density in the irradiated layer and indentation position with respect to the irradiated and indented sample surface. Moreover, the evolution of different hardening mechanisms is addressed in details, which can help obtain a sophisticated comprehension of the fundamental mechanisms that result in irradiation hardening and indentation size effect. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在这项工作中,通过晶体塑性有限元法模拟离子照射钢的横截面纳米凹部。通过考虑在应变梯度晶体塑性理论的框架内的不均匀分布照射缺陷和几何必要位错的影响,包括不均匀照射硬化和压痕尺寸效应的两个主导特征。理论模型应用于离子照射304不锈钢。将拟合和预测的宏观机械响应与不同照射条件下的实验数据进行比较,其包括在表面纳米压痕下的力深度(F-H)和硬度深度(H-H)关系,以及作为功能的硬度横截面纳米压痕下辐照样品表面(H-X)的距离。实现了良好的一致,可以验证所提出的模型的合理性和准确性。此外,在横截面纳米凹口下分析H-X-H的三维关系,表明离子照射材料的硬度取决于照射层中的缺陷密度的分布和齿状位置到辐照和凹进的样品表面。此外,详细解析了不同硬化机制的演化,这有助于获得产生导致照射硬化和压痕尺寸效应的基本机制的复杂理解。 (c)2019 Elsevier Ltd.保留所有权利。

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