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Nanohardness of Sintered and Shock Deformed Alumina

机译:烧结和冲击变形氧化铝的纳米硬度

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摘要

To understand how high–strain rate, flyer-plate impact affects the nanohardness of a coarse (~10 μm) grain, high-density (~3.978 gm cc–1) alumina, load controlled nanoindentation experiments were conducted with a Berkovich indenter on as-sintered disks and shock-recovered alumina fragments obtained from an earlier flyer-plate shock impact study. The nanohardness of the shock-recovered alumina was much lower than that of the as-sintered alumina. The indentation size effect was severe in the shock-recovered alumina but only mild in the as-sintered alumina. Extensive additional characterization by field emission scanning electron microscopy, transmission electron microscopy, and analysis of the experimental load depth data were used to provide a new explanation for the presence of strong indentation size effect in the shock-recovered alumina. Finally, a qualitative model was proposed to provide a rationale for the whole scenario of nanoindentation responses in the as-sintered and shock-recovered alumina ceramics.
机译:为了了解高应变速率,飞板的冲击如何影响粗(〜10μm)晶粒,高密度(〜3.978 gm cc -1 )氧化铝的纳米硬度,进行了负载控制的纳米压痕实验用Berkovich压头对烧结的圆盘和从早期的传单板冲击试验研究中获得的经冲击回收的氧化铝碎片进行了测试。冲击恢复的氧化铝的纳米硬度远低于烧结氧化铝。冲击恢复的氧化铝的压痕尺寸效应严重,而烧结氧化铝的压痕尺寸效应仅轻微。通过场发射扫描电子显微镜,透射电子显微镜以及对实验载荷深度数据的分析,进行了广泛的附加表征,为冲击恢复的氧化铝中强压痕尺寸效应的存在提供了新的解释。最后,提出了一个定性模型,为烧结和减震的氧化铝陶瓷中纳米压痕响应的整个情况提供了理论依据。

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