材料科学
合金
动态应变时效
固溶强化
位错
镁
镁合金
粒度
材料的强化机理
硬化(计算)
延展性(地球科学)
冶金
可塑性
应变硬化指数
复合材料
蠕动
图层(电子)
作者
Zhen-Ming Hua,Min Zha,Zhao-Yuan Meng,Shenbao Jin,Gang Sha,Tian-Shuai Wang,Cheng Wang,Hai-Long Jia,Yipeng Gao,Hui‐Yuan Wang
标识
DOI:10.1080/21663831.2021.2009585
摘要
Achieving appreciable strain-aging hardening coupling with fine-grain strengthening remains a critical challenge in dilute Mg alloys, as high-temperature solid-solution, utilized to impart high-level solutes for strain-aging, inevitably causes grain coarsening and great strength loss. Herein, we report a rapid dislocation-mediated solute repartitioning behavior upon aging in a low-temperature annealed Mg–1.0Zn–0.45Ca–0.33Sn–0.2Mn (wt.%) alloy. Thereby, appreciable strain-aging hardening (YS increment of ∼30 MPa) coupling with fine-grain (grain size of ∼2.5 µm) strengthening accounts for a high yield strength (∼297 MPa) and ductility (∼20%). It suggests a feasible avenue to develop strong dilute Mg alloys by combining strain-aging hardening and fine-grain strengthening.
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