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富铈稀土和Al-Ti-B复合添加对Al-Mg-Si合金微观组织与力学性能的影响
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1.内蒙古工业大学 材料科学与工程学院,内蒙古 呼和浩特 010051;2.中国科学院 物理研究所,北京 100190;3.西北有色金属研究院,陕西 西安 710016

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Effects of Cerium-Rich Rare Earth and Al-Ti-B Composite Addition on Microstructure and Mechanical Properties of Al-Mg-Si Alloys
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Affiliation:

1.School of Materials Science and Engineering, Inner Mongolia University of Technology, Hohhot 010051, China;2.Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China;3.Northwest Institute for Nonferrous Metal Research, Xi 'an 710016, China

Fund Project:

Subproject of Inner Mongolia Autonomous Region Key Research and Development and Achievement Transformation Plan Project (2023YFDZ0064, 2023KJHZ0020, 2022YFDZ0097); Natural Science Foundation of Inner Mongolia Autonomous Region of China (2022QN05040); Basic Research Funds for Directly Affiliated Universities in Inner Mongolia Autonomous Region (JY20220093); Program for Young Talents of Science and Technology in Universities of Inner Mongolia Autonomous Region (NJYT24008)

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    摘要:

    采用富铈稀土与Al-Ti-B直接复合添加的方式对6061铝合金进行改性。结果表明,适量Al-Ti-B与Ce、La元素按照一定比例添加时能够发挥协同作用促使合金晶粒细化。同时Ce、La元素与Si等元素结合形成稀土相,改善析出相的形态及分布,减弱β-Fe相对合金组织与力学性能的危害。当稀土含量过多时,一方面,本应该形成Mg2Si相的一部分Si元素会被过多的Ce、La元素抢夺而导致强化相减少,另一方面,较多数量或较大尺寸的稀土相容易成为裂纹源,不利于合金组织的改善和性能的提升。富铈稀土与Al-Ti-B复合添加的形式能够在保证合金强度的同时显著提升6061铸态合金的塑性。采用复合添加比例为Al-Ti-B:RE=2:1时,制备得到的新型6061-RE铝合金在铸态状态下和经过均匀化热处理后,平均延伸率相较原始6061铝合金分别增长了50%与45%,这有利于合金后续的变形加工。采用复合添加比例为Al-Ti-B:RE=2:1时,制备得到的该6061-RE铝合金经540 ℃/1 h固溶与180 ℃/5 h时效热处理后,析出大量针状 Mg-Si相,其平均极限抗拉伸强度与屈服强度分别达313.2与283.1 MPa,相较原始6061铝合金分别提升了12.3%与14.5%,平均延伸率提升了41%。

    Abstract:

    Modification of 6061 aluminum alloy was conducted through composite addition of cerium-rich rare earths and Al-Ti-B. Results show that the composite addition of Al-Ti-B and Ce/La element at a specific ratio notably promotes the refinement of the alloy's grains. Ce and La elements are combined with Si and other elements to form rare earth phases, improving the morphology and distribution of precipitates and mitigating the adverse effects of β-Fe phases on the microstructure and mechanical properties of alloy. However, excessive rare earth content poses challenges; it not only leads to a decrease in Mg-Si strengthening phase by binding with Si but also promotes the formation of larger or numerous rare earth phases that may act as initiation points for cracks, thereby impeding the improvement of the structure and performance of alloy. The composite addition of cerium-rich rare earths and Al-Ti-B not only preserves the strength of the alloy but also significantly enhances the plasticity of the 6061 as-cast alloy. At a composite addition ratio of Al-Ti-B:RE=2:1, the newly developed 6061-RE aluminum alloy exhibits increased average elongation by 50% and 45% in its as-cast and homogenized states, respectively, compared to the baseline 6061 alloy, facilitating subsequent deformation processing. After solution treatment at 540 °C for 1 h and aging at 180 °C for 5 h, the average ultimate tensile strength and yield strength of 6061-RE alloys reach 313.2 and 283.1 MPa, increased by 12.3% and 14.5% compared with those of the original alloy, respectively, and the average elongation is improved by 41%.

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种宇璠,杜赵新,巩天浩,孙保安,潘哲儒,亓乐乐,解程程,程军.富铈稀土和Al-Ti-B复合添加对Al-Mg-Si合金微观组织与力学性能的影响[J].稀有金属材料与工程,2025,54(1):50~61.[Chong Yufan, Du Zhaoxin, Gong Tianhao, Sun Baoan, Pan Zheru, Qi Lele, Xie Chengcheng, Cheng Jun. Effects of Cerium-Rich Rare Earth and Al-Ti-B Composite Addition on Microstructure and Mechanical Properties of Al-Mg-Si Alloys[J]. Rare Metal Materials and Engineering,2025,54(1):50~61.]
DOI:10.12442/j. issn.1002-185X.20240427

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  • 收稿日期:2024-07-15
  • 最后修改日期:2024-11-05
  • 录用日期:2024-09-12
  • 在线发布日期: 2025-01-24
  • 出版日期: 2025-01-20