东北大学学报(自然科学版) ›› 2025, Vol. 46 ›› Issue (5): 54-61.DOI: 10.12068/j.issn.1005-3026.2025.20230299

• 机械工程 • 上一篇    下一篇

激光热辅助渗碳磨削20CrMnTi表面强化机理

张贺1, 梁超杰2, 孙聪1()   

  1. 1.东北大学 机械工程与自动化学院,辽宁 沈阳 110819
    2.北京宇航系统工程研究所,北京 100071
  • 收稿日期:2023-11-01 出版日期:2025-05-15 发布日期:2025-08-07
  • 通讯作者: 孙聪
  • 作者简介:张 贺(1998—),男,辽宁大连人,东北大学硕士研究生
  • 基金资助:
    国家自然科学基金资助项目(52105433);国家自然科学基金资助项目(52175383)

Surface Strengthening Mechanism of Laser Heat-Assisted Carburizing Grinding of 20CrMnTi

He ZHANG1, Chao-jie LIANG2, Cong SUN1()   

  1. 1.School of Mechanical Engineering & Automation,Northeastern University,Shenyang 110819,China
    2.Beijing Institute of Astronautical Systems Engineering,Beijing 100071,China.
  • Received:2023-11-01 Online:2025-05-15 Published:2025-08-07
  • Contact: Cong SUN

摘要:

具有高耐磨性20CrMnTi钢在轴类、齿轮等核心零部件制造业中有重要需求.现有的表面加工与强化方法很难兼顾生产效率与能耗.将激光微渗碳与磨粒加工技术结合,提出一种高效、可控的20CrMnTi表面加工强化一体化制造方法——激光热辅助渗碳磨削.在自动平面磨床上进行激光热辅助渗碳磨削试验,利用金相显微镜和X射线衍射仪等分析激光热辅助作用下强化表面的创成机理.同时,进行摩擦磨损试验并检测强化表面的力学性能.结果表明,激光热辅助渗碳磨削20CrMnTi表面硬度可达550 HV及以上,磨损损失率降至基体的50%.具有相位差的磨削热回火作用使强化相趋于均匀化,析出粒状碳化物,实现弥漫性强化,所提方法可助力并实现低碳钢表面高性能制造.

关键词: 20CrMnTi, 激光热辅助渗碳磨削, 耐磨性, 表面硬度, 回火作用

Abstract:

The surface of 20CrMnTi steel with high abrasion resistance has great demands in the manufacturing of core components such as shafts and gears. However, it is hard for the existing surface finishing and strengthening methods to balance productivity and energy consumption. Combining laser micro-carburizing and abrasive processing technology, an efficient and controllable integrated manufacturing method for surface machining and strengthening of 20CrMnTi was proposed: laser heat-assisted carburizing grinding. A series of laser heat-assisted carburizing grinding tests were carried out on an automatic surface grinding machine, and the creation mechanism of enhanced surfaces under laser heat-assistance was analyzed by the metallographic microscope and X-ray diffractometer, etc. At the same time, friction and wear tests were carried out and the mechanical properties of the strengthened surface were tested. The results showed that the surface hardness of laser heat-assisted carburizing 20CrMnTi can reach 550 HV and above, and the wear loss rate is reduced to 50% of the matrix. The grinding heat tempering with phase difference tends to homogenize the strengthening phase, precipitate granular carbides, and achieve diffuse strengthening. The proposed method can help and realize the high-performance manufacturing of low-carbon steel surfaces.

Key words: 20CrMnTi, laser heat-assisted carburizing grinding, abrasion resistance, surface hardness, tempering

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