Qi Zhou, Yufeng Xia, Yu Duan, Baihao Zhang, Yuqiu Ye, Peitao Guo, Lu Li
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Furthermore, Yb addition fundamentally suppresses constitutional supercooling by consuming Al atoms, which possess a high growth restriction factor, for the formation of Al–Yb phases. Subsequent tensile testing reveals that Yb solute promotes the generation of extension twins and the accumulation of dislocations during deformation, leading to a marked enhancement in the work-hardening capacity of the Yb-containing alloys. Benefiting from the refined microstructure and enhanced work hardening, the Mg–8.0Al–1.0Yb–0.5Zn alloy exhibits a favorable balance between mechanical strength and ductility, achieving an ultimate tensile strength of ~ 249.8 MPa and an elongation of ~ 11.70%, respectively.</p></div>","PeriodicalId":457,"journal":{"name":"Acta Metallurgica Sinica-English Letters","volume":"38 7","pages":"1095 - 1108"},"PeriodicalIF":3.9000,"publicationDate":"2025-03-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Microstructure and Mechanical Properties of Yb-Containing AZ80 Cast Alloys\",\"authors\":\"Qi Zhou, Yufeng Xia, Yu Duan, Baihao Zhang, Yuqiu Ye, Peitao Guo, Lu Li\",\"doi\":\"10.1007/s40195-025-01835-z\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>The microstructural evolution and mechanical properties of Mg–8.0Al–<i>x</i>Yb–0.5Zn (wt%, <i>x</i> = 0, 1, 2) cast alloys were investigated. With increasing Yb content, a significant grain refinement was observed, accompanied by the continuous refinement and fragmentation of the initial <i>β</i>-Mg<sub>17</sub>Al<sub>12</sub> phase network. Concurrently, the Al<sub>3</sub>Yb phase formed and coarsened. Calculations including formation enthalpy and lattice misfit, confirm that the Al<sub>3</sub>Yb phase, which nucleates prior to the <i>α</i>-Mg and <i>β</i>-Mg<sub>17</sub>Al<sub>12</sub> phases and exhibits a low lattice misfit with their low-index planes, serves as an effective heterogeneous nucleation site, significantly contributing to the observed microstructural refinement. Furthermore, Yb addition fundamentally suppresses constitutional supercooling by consuming Al atoms, which possess a high growth restriction factor, for the formation of Al–Yb phases. Subsequent tensile testing reveals that Yb solute promotes the generation of extension twins and the accumulation of dislocations during deformation, leading to a marked enhancement in the work-hardening capacity of the Yb-containing alloys. 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引用次数: 0
摘要
研究了Mg-8.0Al-xYb-0.5Zn (wt%, x = 0,1,2)铸造合金的组织演变和力学性能。随着Yb含量的增加,晶粒细化明显,初始β-Mg17Al12相网络不断细化和断裂。同时,Al3Yb相形成并粗化。通过生成焓和晶格错配的计算,证实了Al3Yb相在α-Mg和β-Mg17Al12相之前成核,且与α-Mg和β-Mg17Al12相的低折射率面具有较低的晶格错配,是有效的非均相成核位点,显著促进了观察到的显微组织细化。此外,添加Yb从根本上抑制了Al原子的过冷,因为Al原子具有较高的生长限制因子,可以形成Al - Yb相。随后的拉伸试验表明,Yb溶质促进了变形过程中扩展孪晶的产生和位错的积累,导致含Yb合金的加工硬化能力显著增强。Mg-8.0Al-1.0Yb-0.5Zn合金组织细化,加工硬化增强,在力学强度和塑性之间取得了良好的平衡,极限抗拉强度为~ 249.8 MPa,延伸率为~ 11.70%。
Microstructure and Mechanical Properties of Yb-Containing AZ80 Cast Alloys
The microstructural evolution and mechanical properties of Mg–8.0Al–xYb–0.5Zn (wt%, x = 0, 1, 2) cast alloys were investigated. With increasing Yb content, a significant grain refinement was observed, accompanied by the continuous refinement and fragmentation of the initial β-Mg17Al12 phase network. Concurrently, the Al3Yb phase formed and coarsened. Calculations including formation enthalpy and lattice misfit, confirm that the Al3Yb phase, which nucleates prior to the α-Mg and β-Mg17Al12 phases and exhibits a low lattice misfit with their low-index planes, serves as an effective heterogeneous nucleation site, significantly contributing to the observed microstructural refinement. Furthermore, Yb addition fundamentally suppresses constitutional supercooling by consuming Al atoms, which possess a high growth restriction factor, for the formation of Al–Yb phases. Subsequent tensile testing reveals that Yb solute promotes the generation of extension twins and the accumulation of dislocations during deformation, leading to a marked enhancement in the work-hardening capacity of the Yb-containing alloys. Benefiting from the refined microstructure and enhanced work hardening, the Mg–8.0Al–1.0Yb–0.5Zn alloy exhibits a favorable balance between mechanical strength and ductility, achieving an ultimate tensile strength of ~ 249.8 MPa and an elongation of ~ 11.70%, respectively.
期刊介绍:
This international journal presents compact reports of significant, original and timely research reflecting progress in metallurgy, materials science and engineering, including materials physics, physical metallurgy, and process metallurgy.