Influence of non-glide stresses on {101¯2} twin boundary migration in magnesium

IF 3.1 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Kehang Yu , Xin Wang , Subhash Mahajan , Timothy J. Rupert , Irene J. Beyerlein , Penghui Cao , Julie M. Schoenung , Enrique J. Lavernia
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Abstract

Twin thickening occurs via the migration of a twin boundary during deformation and serves as an important mechanism for accommodating plastic strain. While the local stress state significantly influences twin boundary migration, the precise relationship remains unclear and difficult to determine experimentally. Here, we investigate {101¯2} coherent twin boundary migration in Mg under various stress fields by using the nudged elastic band method to calculate its minimum energy path and hence migration barrier. The results reveal an appreciable influence of non-glide stresses on coherent twin boundary migration. Specifically, the presence of a compressive normal stress reduces the energy barrier. We formulate a phenomenological model to describe the energy barrier as a function of the ratio between the shear stress and the critical resolved shear stress for coherent twin boundary migration. Our results reveal that non-glide stresses can change the critical resolved shear stress and, consequently, the probability of coherent twin boundary migration. In addition, by examining the atomic mechanisms underlying coherent twin boundary migration, we find that the relative atomic displacement at the twinning disconnection observed during coherent twin boundary migration is smaller than the one widely reported in the literature. The energetically favorable configuration of this twinning disconnection varies for different non-glide stresses, causing a non-glide stress-dependent energy barrier. This study advances the understanding of fundamental deformation mechanisms and can contribute to improving models of twinning-induced plasticity.

Abstract Image

非滑动应力对镁中{101¯2}孪晶边界迁移的影响
孪晶增厚是在变形过程中通过孪晶边界迁移发生的,是容纳塑性应变的重要机制。虽然局部应力状态对孪晶边界迁移有很大影响,但其中的确切关系仍不清楚,也很难通过实验确定。在此,我们研究了镁中{101¯2}相干孪晶边界在各种应力场下的迁移,采用裸弹带法计算其最小能量路径,从而计算迁移障碍。结果表明,非滑动应力对相干孪晶边界迁移有显著影响。具体来说,压缩法向应力的存在降低了能量屏障。我们建立了一个现象学模型,以描述能量障碍作为相干孪晶边界迁移的剪应力与临界解析剪应力之间比率的函数。我们的研究结果表明,非滑动应力会改变临界分辨剪切应力,从而改变孪晶边界相干迁移的概率。此外,通过研究相干孪晶边界迁移的原子机制,我们发现在相干孪晶边界迁移过程中观察到的孪晶断开处的相对原子位移小于文献中广泛报道的位移。在不同的非滑动应力下,这种孪晶断开的能量有利构型各不相同,从而产生了与滑动应力无关的能量势垒。这项研究加深了对基本变形机制的理解,有助于改进孪晶诱导塑性模型。
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来源期刊
Computational Materials Science
Computational Materials Science 工程技术-材料科学:综合
CiteScore
6.50
自引率
6.10%
发文量
665
审稿时长
26 days
期刊介绍: The goal of Computational Materials Science is to report on results that provide new or unique insights into, or significantly expand our understanding of, the properties of materials or phenomena associated with their design, synthesis, processing, characterization, and utilization. To be relevant to the journal, the results should be applied or applicable to specific material systems that are discussed within the submission.
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