材料科学
微观结构
冶金
马氏体
激光器
无扩散变换
过程(计算)
马氏体不锈钢
杠杆(统计)
工作(物理)
融合
机械工程
高能
动火作业
合金
作者
Hongyuan Zhang,Juan Hou,Xingtao Liu,Dongke Sun,Yuman Zhu,Menglong Hao,Kai Zhang,Aijun Huang,Xinni. Tian
标识
DOI:10.1016/j.matdes.2025.114574
摘要
Ferrous alloys, as foundational structural materials, hold great promise for metal additive manufacturing (AM). Among them, martensitic steel (MS) has attracted attention in laser powder based-AM due to its high strength, excellent hardenability, and cost-effectiveness. Extensive efforts have focused on optimizing process parameters and tailoring microstructures to enhance mechanical performance. However, current studies reveal significant variability in mechanical properties, especially in as-built conditions, posing challenges to broader applications. This review summarizes recent advances in microstructural characterization, strengthening mechanisms, and mechanical evaluation of AM-fabricated MS, focusing on two key laser powder-based methods: laser powder bed fusion (LPBF) and laser directed energy deposition (LDED). Special emphasis is placed on three major subclasses—maraging steels, precipitation-hardening martensitic stainless steels, and carbon-containing martensitic steels—widely used in aerospace, automotive, and tooling industries for their desirable mechanical performance in demanding applications. The review also explores process–microstructure–property relationships under both as-built and heat-treated states. A critical assessment of existing work highlights the urgent need for more quantitative studies on microstructure–property correlations, to fully leverage AM’s unique solidification behavior and guide microstructural design for improved performance.
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