• 教授
  • 博士生导师
  • 硕士生导师
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  • 入职时间:2017-12-14
  • 学历:博士研究生毕业
  • 性别:
  • 学位:博士
  • 在职信息:在职
  • 毕业院校:巴黎高等矿业学院
  • 所属院系:机械工程学院
  • 学科:机械工程
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22级博士生李新志关于颗粒强化高性能镁合金激光选区熔化增材制造的论文在Additive Manufacturing 上发表!
  • 发布时间:2023-04-13
  • 文章标题:22级博士生李新志关于颗粒强化高性能镁合金激光选区熔化增材制造的论文在Additive Manufacturing 上发表!
  • 内容:

    Additively manufactured high-performance AZ91D magnesium alloys with excellent strength and ductility via nanoparticles reinforcement

     

    https://doi.org/10.1016/j.addma.2023.103550

    Abstract

    High-performance lightweight magnesium matrix composites (MMCs) play an important role in reducing CO2 emissions in the context of carbon neutrality. In order to promote the widespread applications of MMCs, academic research on the design and fabrication of MMCs has increased dramatically over the past decade. However, it is extremely challenging to prepare MMCs with conventional techniques. In this study, nearly-dense nanoparticles modified AZ91D composites containing 2 wt. % nano-TiCN were manufactured by laser powder bed fusion (L-PBF) technology. The influence of nano-TiCN on the L-PBF processability, microstructure evolution, tensile properties, and underlying mechanisms of TiCN/AZ91D composites were systematically investigated. Results demonstrate that a suitable amount of nano-TiCN introduced to AZ91D can improve densification, restrict growth and refine the size of α-Mg and β-Al12Mg17, and introduce more crystallographic defects. Consequently, the as-deposited TiCN/AZ91D composites exhibit excellent strength without compromising ductility (ultimate tensile strength of ∼361 MPa and elongation up to ∼8.9 %), which are far superior to those of most previously reported L-PBFed Mg alloys and MMCs. The underlying mechanisms for strength enhancement are mainly ascribed to the decreased volumetric porosity, grain boundary strengthening through the refined grain, dislocation strengthening due to local mismatch stress, as well as Orowan strengthening via intragranular nano-TiCN. The excellent ductility is mainly attributed to delayed void nucleation by decreased defects, grain refinement, homogenous and refined β-Al12Mg17, and improved dislocation plasticity by well-dispersed nano-TiCN. This study thus sheds new light on fabricating high-performance MMCs with complex geometry by L-PBF.