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Modelling nano-indentation of ion-irradiated FCC single crystals by strain-gradient crystal plasticity theory

机译:应变梯度晶体塑性理论建模离子照射FCC单晶的纳米压痕

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In this work, a strain-gradient crystal plasticity theory with irradiation effect is proposed for the surface nano-indentation of ion-irradiated FCC metals. In order to characterize the indentation size effect and irradiation hardening of ion-irradiated materials indented by the Berkovich indenter, the hardening contributions of geometrically necessary dislocations and non-uniformly distributed defects are incorporated into the classical crystal plasticity theory. The constitutive equations are implemented into ABAQUS through the user material subroutine VUMAT to numerically simulate the surface nano-indentation of ion-irradiated single crystal copper. The theoretical model is calibrated by comparing the numerical results with experimental data. Both the simulated force-depth relationship without irradiation effect and hardness-depth relationship with/without irradiation effect can match well with corresponding experimental data. The dominant features as observed in the nano-indentation of ion-irradiated materials can be effectively characterized by the proposed theoretical framework, which include the indentation size effect, depth-dependent irradiation hardening, and unirradiated substrate softening effect. Moreover, the evolution of different hardening mechanisms during the surface nano-indentation is systematically analyzed to help understand the macroscopic deformation behavior.
机译:在这项工作中,提出了一种具有照射效应的应变梯度晶体塑性理论,用于离子辐照的FCC金属的表面纳米缩进。为了表征由Berkovich压痕缩进的离子照射材料的压痕尺寸效应和照射硬化,几何必要脱位和非均匀分布缺陷的固化贡献结合到经典晶体塑性理论中。本构方程通过用户材料子程序Vumat实施到ABAQUS中,以数值方式模拟离子照射单晶铜的表面纳米凹陷。通过将数值结果与实验数据进行比较来校准理论模型。模拟力深度关系无需照射效果和与/不辐照效果的硬度深度关系可以很好地匹配相应的实验数据。通过所提出的理论框架,可以有效地表征在离子照射材料的纳米压痕中观察到的主要特征,其包括压痕尺寸效应,深度依赖性照射硬化和未照射的底物软化效果。此外,系统地分析了在表面纳米压痕期间不同硬化机制的演化以帮助理解宏观变形行为。

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