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An experimental and computational study of the elastic-plastic transition in thin films

机译:薄膜弹性塑料过渡的实验与计算研究

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Nanoindentation studies of thin metal films have provided insight into the mechanisms of plasticity in small volumes, showing a strong dependence on the film thickness and grain size. It has been previously shown that an increased dislocation density can be manifested as an increase in the hardness or flow resistance of a material, as described by the Taylor relation [1]. However, when the indentation is confined to very small displacements, the observation can be quite the opposite; an elevated dislocation density can provide an easy mechanism for plasticity at relatively small loads, as contrasted with observations of near-theoretical shear stresses required to initiate dislocation activity in low-dislocation density materials. Experimental observations of the evolution of hardness with displacement show initially soft behavior in small-grained films and initially hard behavior in large-grained films. Furthermore, the small-grained films show immediate hardening, while the large grained films show the 'softening' indentation size effect (ISF) associated with strain gradient plasticity. Rationale for such behavior has been based on the availability of dislocation sources at the grain boundary for initiating plasticity. Embedded atom method (EAM) simulations of the initial stages of indentation substantiate this theory; the indentation response vanes as expected when the proximity of the indenter to a Σ79 grain boundary is varied.
机译:薄金属薄膜的纳米凸缘研究已经为小体积的可塑性提供了洞察力,显示出对膜厚度和晶粒尺寸的强烈依赖。先前已经表明,如泰勒关系所描述的,可以表现出增加的位错密度,以增加材料的硬度或流动阻力[1]。然而,当压痕被限制在非常小的位移时,观察可以是相反的;升高的位错密度可以为相对较小的载荷提供易于塑性的容易机制,与在低位错密度材料中引发位错活性所需的近乎理论剪切应力的观察结果形成鲜明对比。具有位移的硬度演化的实验观察显示小粒膜中的初始软行为,并且在大粒膜中最初的硬行为。此外,小颗粒薄膜显示出立即硬化,而大颗粒膜显示出与应变梯度可塑性相关的“软化”缩进尺寸效应(ISF)。这种行为的基本原理基于晶粒边界的错位源的可用性,以启动可塑性。嵌入的原子方法(EAM)模拟压痕初始阶段证实了这一理论;当压痕到Σ79晶界的接近变化时,压痕响应叶片随着预期而变化。

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