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From generalized stacking fault energies to dislocation properties: Five-energy-point approach and solid solution effects in magnesium

机译:从广义的层错能到位错性质:镁的五能点法和固溶效应

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Using ab initio calculations and symmetrized plane waves, we analyze the basal-plane generalized stacking fault energies in pure Mg and Mg-Y alloys and show that the knowledge of energies of only five specific points is sufficient to accurately predict the core structures and Peierls stresses of (a)-type edge dislocations in these alloys. Our five-point approach substantially reduces the computational cost related to the Peierls-Nabarro (PN) model and allows for a high-throughput application of the PN model to study Peierls stress changes in Mg upon alloying. We employ our approach to study Mg binary alloys containing nine rare-earth (RE) and 11 other solutes. Based on the Peierls stresses of these 20 Mg alloys calculated from the Peierls-Nabarro model, the solutes are divided into three groups: (ⅰ) the first group, consisting of Be, Zn, Tl, Tc, Os, Ru, Re, and Co, when added as solutes into Mg, lead to more compact dislocation core structures and larger Peierls stresses than found for pure Mg. (ⅱ) Elements in the second group, including Ti, Nd, Lu, Zr, Hf, La, and Pr change the core widths and Peierls stresses moderately, (ⅲ) The solutes in the third group containing Y, Er, Tm, Ho, and Sc extend the stacking fault width, and the resulting Peierls stresses are generally very low. Based on an error analysis, we conclude that the first group has a clear solute strengthening effect and the third group has a clear solute softening effect, while the effects of the elements in the second group are too small to be resolved by the present approach.
机译:使用从头算和对称平面波,我们分析了纯Mg和Mg-Y合金中的基面广义堆垛层错能,并表明仅了解五个点的能量足以准确预测核心结构和Peierls应力这些合金中(a)型边缘位错的分布。我们的五点方法大大降低了与Peierls-Nabarro(PN)模型相关的计算成本,并且允许PN模型的高通量应用来研究合金化过程中Mg的Peierls应力变化。我们采用我们的方法研究包含9种稀土(RE)和11种其他溶质的Mg二元合金。根据根据Peierls-Nabarro模型计算出的这20种Mg合金的Peierls应力,将溶质分为三组:(ⅰ)第一组,由Be,Zn,Tl,Tc,Os,Ru,Re和Co作为溶质添加到Mg中时,会比纯Mg导致更紧凑的位错核心结构和更大的Peierls应力。 (ⅱ)第二组中的元素,包括Ti,Nd,Lu,Zr,Hf,La和Pr改变核心宽度,Peierls应力适中;(ⅲ)第三组中的溶质包含Y,Er,Tm,Ho ,和Sc扩展了堆垛层错宽度,因此产生的Peierls应力通常非常低。基于误差分析,我们得出结论,第一组具有明显的溶质强化作用,第三组具有明显的溶质软化作用,而第二组中元素的作用太小,无法用本方法解决。

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