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Elastic properties of nanostructured materials with layered grain boundary structure

机译:具有层状晶界结构的纳米材料的弹性性能

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摘要

Atomistic calculations of the elastic constants for a bulk nanostructured material that consists of a layered structure where alternating layers meet along high angle grain boundaries and where atoms interact via a Lennard-Jones potential are presented. The calculations of the elastic constants were performed in the frame of homogeneous deformations for a wide range of layer widths ranging from 2.24 up to 74.62 nm. The results showed that the relaxation of the atomic structure affects the elastic constants for the cases where more than 5% of atoms are located in the GB region. Also it was found that the way that external stresses are applied on the system affects the values of the obtained elastic properties, with the elastic constants related to the characteristic directions of the grain boundary being the most affected ones. The findings of this work are of interest for the fabrication methods of nanostructured materials, the measurement methods of their elastic properties as well as multiscale modeling schemes of nanostructured materials.
机译:提出了由层状结构组成的整体纳米结构材料的弹性常数的原子计算,该结构中交替的层沿高角度晶界相遇,并且原子通过Lennard-Jones电势相互作用。弹性常数的计算是在2.24至74.62 nm的较宽层宽范围内的均质变形框架内进行的。结果表明,当GB区域中有5%以上的原子时,原子结构的弛豫会影响弹性常数。还发现,在系统上施加外应力的方式会影响所获得的弹性性能的值,其中与晶界特征方向有关的弹性常数受影响最大。这项工作的发现对于纳米结构材料的制造方法,其弹性性能的测量方法以及纳米结构材料的多尺度建模方案都是有意义的。

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