集体位错环成核模型对纳米压痕中位移爆裂现象的理论研究

T. Tsuru, Y. Shibutani
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引用次数: 2

摘要

在晶体材料的纳米压痕中,在压痕载荷与压痕深度的关系中观察到位移的突然增长,即所谓的位移爆裂,已被认为是纳米尺度塑性行为(纳米塑性)的典型例子之一。这种现象对应于塑性变形的早期阶段,受集体位错发射的影响较大。本文利用基于赫兹接触理论和经典位错理论的弹性理论,建立了纳米压痕中首次位移爆破的简化模型。能量平衡分析模型的结果表明,爆发宽度与位错发射对应的临界压痕深度之间存在很强的相关性。结果表明,同时产生了一百多个高密度位错,每个位错偶极子的Burgers向量对应的表面阶跃引起了显著的位移爆发。
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Theoretical Investigation of the Displacement Burst Observed in Nanoindentation by Collective Dislocation Loops Nucleation Model
Abrupt growth of displacement observed in the relationship between indent load and indent depth in nanoindentation of crystalline materials, so-called displacement burst, has been recognized as one of the representative examples of nanoscale plastic behavior (nanoplasticity). This phenomenon corresponds to the early stage of plastic deformation and is greatly influenced by the collective dislocation emission. In the present paper a simplified model is constructed for the first displacement burst with use of the elastic theory based on both the Hertzian contact theory and the classical dislocation theory to evaluate the displacement burst in nanoindentation. The result of the analytical model for the energy equilibrium revealed that there is a strong correlation between burst width and critical indent depth that corresponds to the dislocation emission. Finally, it is shown that more than one hundred high-density dislocations are generated simultaneously and surface step corresponding to the Burgers vector of dislocation dipole of each emitted dislocation causes significant displacement burst.
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