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Voronoi cell finite element modelling of the intergranular fracture mechanism in polycrystalline alumina

机译:多晶氧化铝晶间断裂机制的Voronoi单元有限元模拟

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摘要

The mechanisms of fracture in polycrystalline alumina were investigated at the grain level using both the micromechanical tests and finite element (FE) model. First, the bending experiments were performed on the alumina microcantilever beams with a controlled displacement rate of 10 nm s–1 at the free end; it was observed that the intergranular fracture dominates the failure process. The full scale 3D Voronoi cell FE model of the microcantilever bending tests was then developed and experimentally validated to provide the insight into the cracking mechanisms in the intergranular fracture. It was found that the crystalline morphology and orientation of grains have a significant impact on the localised stress in polycrystalline alumina. The interaction of adjacent grains as well as their different orientations determines the localised tensile and shear stress state in grain boundaries. In the intergranular fracture process, the crack formation and propagation are predominantly governed by tensile opening (mode I) and shear sliding (mode II) along grain boundaries. Additionally, the parametric FE predictions reveal that the bulk failure load of the alumina microcantilever increases with the cohesive strength and total fracture energy of grain boundaries.
机译:使用微机械试验和有限元模型,在晶粒水平上研究了多晶氧化铝的断裂机理。首先,对氧化铝微悬臂梁进行了弯曲实验,其自由端的位移率为10 nm s-1。据观察,晶间骨折在破坏过程中占主导地位。然后,开发了微悬臂弯曲测试的完整3D Voronoi细胞有限元模型,并进行了实验验证,以提供对晶间骨折破裂机制的见识。发现晶粒的结晶形态和取向对多晶氧化铝中的局部应力具有显着影响。相邻晶粒的相互作用及其不同的方向决定了晶界中局部的拉伸和剪切应力状态。在晶间断裂过程中,裂纹的形成和扩展主要受沿晶界的拉伸开口(I型)和剪切滑动(II型)的控制。另外,参数有限元预测表明,氧化铝微悬臂梁的整体破坏载荷随着晶界的内聚强度和总断裂能而增加。

著录项

  • 作者

    Wang, Zhiyong; Li, Peifeng;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 en
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