• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2026, Vol. 62 ›› Issue (13): 444-456.doi: 10.3901/JME.260707

• 制造工艺与装备 • 上一篇    

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激光定向能量沉积18Mn钢宽范围强韧性调控

张智妍1, 易飞2, 周游1, 张宏凯1, 方学伟1, 刘怡3,4, 黄科1   

  1. 1. 西安交通大学机械工程学院 西安 710049;
    2. 中交第二航务工程局有限公司 武汉 430401;
    3. 中国核动力研究设计院先进核能技术全国重点实验室 成都 610213;
    4. 中国核动力研究设计院核能增材制造实验室 成都 610213
  • 收稿日期:2025-06-10 修回日期:2025-12-13 发布日期:2026-08-28
  • 作者简介:张智妍,女,2001年出生。主要研究方向为金属增材制造。E-mail:Zhiyan@stu.xjtu.edu.cn;黄科(通信作者),男,1983年出生,博士,教授,博士研究生导师。主要研究方向为金属增材制造及多场耦合工艺,金属增材制造变形及内部缺陷在线监测,金属增材制造装备及应用等。E-mail:ke.huang@xjtu.edu.cn

Tailoring of Wide Range Strength and Ductility of Laser Directed Energy Deposited 18Mn Steel

ZHANG Zhiyan1, YI Fei2, ZHOU You1, ZHANG Hongkai1, FANG Xuewei1, LIU Yi3,4, HUANG Ke1   

  1. 1. School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an 710049;
    2. China Communications Construction Second Harbor Engineering Co., Ltd., Wuhan 430401;
    3. State key Laboratory of Advanced Nuclear Energy Technology, Nuclear Power Institute of China, Chengdu 610213;
    4. Nuclear Power Additive Manufacturing Laboratory, Nuclear Power Institute of China, Chengdu 610213
  • Received:2025-06-10 Revised:2025-12-13 Published:2026-08-28

摘要: 为了促进激光定向能量沉积(Laser directed energy deposition, LDED)增材制造技术在低合金高强钢上的推广应用,需要明确增材工艺参数和后续热处理对成形样组织性能的影响。采用不同激光功率输入的激光定向能量沉积技术制备低合金高强钢18Mn成形样件,并结合高温正火热处理,系统地研究了18Mn钢的微观组织演变规律与力学性能调控方法。结果表明,18Mn增材成形组织随着激光功率的增大,从板条状贝氏体向珠光体铁素体组织转变,高强度低塑性的力学性能转变为低强度高塑性。经过高温正火热处理后,样件整体组织均匀统一,塑性提高,并且不同激光功率组样件的组织性能相似。通过采用不同的加工参数和热处理工艺,可以实现18Mn增材成形件性能在屈服强度355~800 MPa,延伸率10%~27%的宽范围调控。为LDED技术在低合金高强钢增材制造及再制造修复领域的应用提供了重要的理论依据和实验数据支持。

关键词: 激光定向能量沉积, 低合金高强钢, 热处理, 微观组织, 强塑性

Abstract: To promote the application of laser directed energy deposition (LDED), as one of additive manufacturing technology, for low-alloy high-strength steels, it is crucial to clarify the impact of additive process parameters and subsequent heat treatment strategies on the microstructure and properties of the formed specimens. Low-alloy high-strength steel 18Mn was fabricated using LDED technology with different laser power inputs, followed by high-temperature normalizing heat treatment. The microstructural evolution and the mechanical property regulation methods of 18Mn steel are systematically investigated. The results demonstrate that with an increase in laser power, the microstructure of the 18Mn additive-formed specimens transitions from lath bainite to pearlitic-ferritic , with the corresponding mechanical properties shifting from high strength and low ductility to low strength and high ductility. After high-temperature normalizing heat treatment, the overall microstructure of the specimens becomes uniform and homogeneous, with improved ductility, and the microstructure and properties of specimens fabricated with different laser power inputs are similar. By varying the processing parameters and heat treatment conditions, the mechanical properties of 18Mn additive-formed parts can be controlled in a wide range, with yield strengths ranging from 355 MPa to 800 MPa and elongation from 10% to 27%. These findings provide important theoretical foundations and experimental data for the application of LDED technology in the additive manufacturing and remanufacturing repair of low-alloy high-strength steels.

Key words: lase directed energy deposition, low-alloy high-strength steel, heat treatment, microstructure, strength & ductility

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