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A study of the submicron indent-induced plastic deformation

机译:亚微米压痕诱导塑性变形的研究

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A new method has been developed to achieve a better understanding of submicron indent-induced plastic deformation. This method combines numerical modeling and various experimental data and techniques. Three-dimensional discrete dislocation dynamics simulation and the finite element method (FEM) were used to model the experimental conditions associated with nanoindentation testing in fcc crysta1s. Transmission electron microscopy (TEM) observations of the indent-induced plastic volume and analysis of the experimental loading curve help in defining a complete set of dislocation nucleation rules, including the shape of the nucleated loops and the corresponding macroscopic loading. A validation of the model is performed through direct comparisons between a simulation and experiments for a nanoindentation test on a [00l] copper single crystal up to 50 nm deep.
机译:已经开发出一种新方法来更好地了解亚微米压痕引起的塑性变形。这种方法结合了数值建模和各种实验数据和技术。使用三维离散位错动力学模拟和有限元方法(FEM)来模拟与FCC晶体纳米压痕测试相关的实验条件。压痕诱发的塑料体积的透射电子显微镜(TEM)观察和实验载荷曲线的分析有助于定义位错成核规则的完整集合,包括成核环的形状和相应的宏观载荷。模型的验证是通过在模拟和实验之间进行直接比较来进行的,该实验是针对[00l]深度达50 nm的铜单晶进行纳米压痕测试。

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