拉伸单晶铜纳米梁中孔洞的影响

A. Ahadi, P. Hansson, S. Melin
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引用次数: 0

摘要

对单晶铜缺陷纳米梁在位移控制张力下加载直至断裂的过程进行了分子动力学模拟。这些缺陷是方形的,大小不同的穿过厚度的空洞,放置在梁的中央。研究了三种不同的截面尺寸和两种不同的晶体取向。正如预期的那样,梁的横截面和空洞的大小以及晶体取向对梁的弹性和塑性行为都有很大的影响。塑性初始应变随梁截面尺寸的增大而增大,随空隙尺寸的减小而减小。进一步观察到,随着孔洞截面和孔洞尺寸的不同,孔洞的变形方式也不同。有时孔洞闭合,导致梁截面颈缩,随后发生断裂。在其他情况下,空洞拉长导致空洞上下的两个韧带独立破裂。(少)
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effects of Voids in Tensile Single-Crystal Cu Nanobeams
Molecular dynamic simulations of defect nano-sized beams of single-crystal Cu, loaded in displacement controlled tension until rupture, have been performed. The defects are square-shaped, through-the-thickness voids of different sizes, placed centrally in the beams. Three different cross section sizes and two different crystallographic orientations are investigated. As expected, the sizes of the beam cross section and the void as well as the crystal orientation strongly influences both the elastic and the plastic behaviors of the beams. It was seen that the strain at plastic initiation increases with beam cross section size as well as with decreasing void size. It is further observed that the void deformed in different ways depending on cross section and void size. Sometimes void closure, leading to necking of the beam cross section followed by rupture occurred. In other cases the void elongated leading to that the two ligaments above and below the void ruptured independently. (Less)
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