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Revealing Grain Boundary Sliding from Textures of a Deformed Nanocrystalline Pd–Au Alloy

机译:从变形的纳米晶Pd-Au合金的织构揭示晶粒边界滑动

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摘要

Employing a recent modeling scheme for grain boundary sliding [Zhao et al. Adv. Eng. Mater. >2017, doi:10.1002/adem.201700212], crystallographic textures were simulated for nanocrystalline fcc metals deformed in shear compression. It is shown that, as grain boundary sliding increases, the texture strength decreases while the signature of the texture type remains the same. Grain boundary sliding affects the texture components differently with respect to intensity and angular position. A comparison of a simulation and an experiment on a Pd–10 atom % Au alloy with a 15 nm grain size reveals that, at room temperature, the predominant deformation mode is grain boundary sliding contributing to strain by about 60%.
机译:采用一种新的晶粒边界滑动建模方案[Zhao等。进阶。母校> 2017 ,doi:10.1002 / adem.201700212],模拟了剪切压缩变形的纳米晶fcc金属的晶体织构。结果表明,随着晶界滑动的增加,织构强度降低,而织构类型的特征保持不变。晶粒边界滑动在强度和角度位置方面对纹理成分的影响不同。在晶粒尺寸为15 nm的Pd-10原子%Au合金上进行的模拟和实验比较表明,在室温下,主要的变形模式是晶界滑动,从而导致约60%的应变。

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