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Bonding characteristics of micro-alloyed B2 NiAl in relation to site occupancies and phase stability

机译:微合金化B2 NiAl的键合特性与场地占用率和相稳定性的关系

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摘要

A recently developed mean-field model has been combined with first principles calculations of binding energy to investigate the site occupancies of micro-alloying elements and vacancies in NiAl as well as the stability of the micro-alloyed B2 phase with respect to disordering and second-phase formation. The theoretical results suggest that the transition metal elements in the same row of the periodic table increasingly tend to the Ni sublattice with increasing atomic number. Micro-alloying addition tends to decrease the vacancy concentration of NiAl alloys. Alloying with X that substitutes for Ni is predicted to have the sides of its solubility lobe parallel to the Ni-X side of the isotherm, but parallel to the Al-X side if X substitutes for Al. Micro-alloying was shown to raise the ordering temperature of the B2 phase over the corresponding binary alloy, in contrast with the effect of vacancies. Alloying effects on ordering temperature and the formation of point defects appear independent of the site substitution behaviour, and are less significant for 3d than for 4d and 5d transition metal elements.
机译:最近开发的平均场模型与结合能的第一性原理计算相结合,研究了NiAl中微合金元素和空位的位址占用,以及微合金化B2相在无序和第二相形成方面的稳定性。理论结果表明,随着原子序数的增加,元素周期表同一行的过渡金属元素越来越趋向于Ni亚晶格。微合金化添加倾向于降低NiAl合金的空位浓度。与替代 Ni 的 X 合金化预计其溶解度瓣的侧平行于等温线的 Ni-X 侧,但如果 X 取代 Al,则平行于 Al-X 侧。合金化对有序温度和点缺陷形成的影响似乎与位点替代行为无关,并且对于3d的比较不显著于4d和5d过渡金属元素。

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