Shao Jian-Li, Wang Pei, Zhang Feng-Guo, He An-Min
State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, 100081, China.
Institute of Applied Physics and Computational Mathematics, Beijing, 100094, China.
Sci Rep. 2018 May 16;8(1):7650. doi: 10.1038/s41598-018-25758-1.
Previous researches have revealed the importance of shear and the orientation dependence in the structural transition of iron. In this work, we introduce a series of shear deformations by adjusting the strain ratio between the longitudinal ([001]) and transversal ([010] and [100]) directions, and then investigate this structural transition under different anisotropic compressions with molecular dynamics simulations. It is found that the shear deformation can lower the transition pressure notably, and even change the nucleation structure and morphology. Under 1D-dominated compression (along (001) direction), there only appears hcp nucleation with a few fcc stacking faults. For other cases, more equivalent planes will be activated and fcc structure begins to nucleate. Under 2D-dominated compression (along (010) and (001) directions), the fcc mass fraction is already over the hcp phase. At last, we compare the variations of shear stress and potential energy for different phases, and present the sliding mechanism under typical anisotropic compressions.
先前的研究揭示了剪切力以及取向依赖性在铁的结构转变中的重要性。在这项工作中,我们通过调整纵向([001])和横向([010]和[100])方向之间的应变比引入一系列剪切变形,然后利用分子动力学模拟研究在不同各向异性压缩下的这种结构转变。结果发现,剪切变形能够显著降低转变压力,甚至改变形核结构和形态。在一维主导压缩(沿(001)方向)下,仅出现具有少量面心立方堆垛层错的六方密排形核。对于其他情况,更多等效平面将被激活,面心立方结构开始形核。在二维主导压缩(沿(010)和(001)方向)下,面心立方质量分数已经超过六方密排相。最后,我们比较了不同相的剪应力和势能变化,并给出了典型各向异性压缩下的滑动机制。