纳米晶材料
材料科学
变形机理
位错
晶体孪晶
分子动力学
粒度
变形(气象学)
微观结构
晶界强化
晶界
严重塑性变形
复合材料
冶金
纳米技术
化学
计算化学
作者
V. Yamakov,D. Wolf,Simon R. Phillpot,Amiya K. Mukherjee,H. Gleiter
摘要
The mechanical behaviour of nanocrystalline materials (that is, polycrystals with a grain size of less than 100 nm) remains controversial. Although it is commonly accepted that the intrinsic deformation behaviour of these materials arises from the interplay between dislocation and grain-boundary processes, little is known about the specific deformation mechanisms. Here we use large-scale molecular-dynamics simulations to elucidate this intricate interplay during room-temperature plastic deformation of model nanocrystalline Al microstructures. We demonstrate that, in contrast to coarse-grained Al, mechanical twinning may play an important role in the deformation behaviour of nanocrystalline Al. Our results illustrate that this type of simulation has now advanced to a level where it provides a powerful new tool for elucidating and quantifying--in a degree of detail not possible experimentally--the atomic-level mechanisms controlling the complex dislocation and grain-boundary processes in heavily deformed materials with a submicrometre grain size.
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