谷歌浏览器插件
订阅小程序
在清言上使用

Using Multiscale Second Phases to Fabricate High-Performance Mg-3Al-3Nd-0.1Mn Alloys with Bimodal Grain Structures

MATERIALS TODAY COMMUNICATIONS(2024)

引用 0|浏览9
暂无评分
摘要
The quest for magnesium alloys that combine high strength and high ductility drives significant research effort aimed at broadening their use in various sectors. In this research, a low-alloy Mg-3Al-3Nd-0.1Mn (AEM330) was successfully prepared through Hard Plate Rolling (HPR), achieving an ideal combination of high strength and ductility via carefully modifying grain structure at lower rolling temperature. The optimized processing conditions led to an alloy with an ultimate tensile strength of 427 MPa and an notable elongation of 11.4 %. The AEM330 processed by HPR displayed unique bimodal grain structure with coarse grains (CGs) sizes similar to 13.66 mu m and fine grains (FGs) sizes similar to 2.36 mu m, and their strength and ductility were found to be directly related to the microstructural differences between CGs and FGs. A crucial discovery of this study is the essential role of the Al2Nd phase (larger than 1 mu m) and the Al11Nd3 phase (smaller than 1 mu m) in forming bimodal grain structure. The former phase plays a significant role in recrystallization by particle-stimulated nucleation (PSN), and the latter restricts grain size via Zener pinning. Furthermore, it was found that the ratio of CGs to FGs could be controlled by modifying the rolling temperature. Importantly, the simple composition and direct shaping process of the AEM330 alloy not only improve its cost-effectiveness but also streamline the manufacturing process; thus, enhancing its potential for broad industrial use.
更多
查看译文
关键词
Magnesium alloy,Bimodal grain structure,Particle-stimulated nucleation,Zener pinning,High strength and ductility,AEM330
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要