金属热处理 ›› 2026, Vol. 51 ›› Issue (2): 334-339.DOI: 10.13251/j.issn.0254-6051.2026.02.050

• 表面工程 • 上一篇    下一篇

高频感应熔覆-电接触强化复合工艺制备WC/Ni60涂层的组织与性能

毕雅萱, 赵帅   

  1. 河南理工大学 鹤壁工程技术学院, 河南 鹤壁 458030
  • 收稿日期:2025-09-10 修回日期:2025-12-04 发布日期:2026-03-05
  • 通讯作者: 赵 帅,副教授,硕士,E-mail:zhaos@hpu.edu.cn
  • 作者简介:毕雅萱(1990—),女,讲师,硕士,主要研究方向为机械零件表面强化技术,E-mail:462426376@qq.com。

Microstructure and properties of WC/Ni60 coating prepared by high-frequency induction cladding and electric contact strengthening composite process

Bi Yaxuan, Zhao Shuai   

  1. Hebi Institute of Engineering and Technology, Henan Polytechnic University, Hebi Henan 458030, China
  • Received:2025-09-10 Revised:2025-12-04 Published:2026-03-05

摘要: 采用高频感应熔覆-电接触强化复合工艺,在退火态42CrMo钢表面制备了WC/Ni60涂层,涂层经处理后形成345~520 μm的有效致密层,并通过超景深显微镜、X射线衍射仪、显微硬度计及摩擦磨损试验机对涂层的微观组织和力学性能进行分析。结果表明,电接触强化处理显著细化WC/Ni60涂层的晶粒,提高涂层的致密性。电接触强化处理后,涂层中生成了W2C、Cr7C3、Cr23C6等硬质相,涂层显微硬度从电接触强化前的600~650 HV0.2提高至700~900 HV0.2。电接触强化后涂层耐磨性表现优异,10 h磨损试验后,其磨损量分别仅为未强化涂层和42CrMo钢基体的18%和13%,耐磨性分别提升了5.6倍和7.7倍。

关键词: 高频感应熔覆, 电接触强化, WC/Ni60涂层, 组织, 显微硬度, 耐磨性

Abstract: A WC/Ni60 coating with an effective dense layer thickness of 345-520 μm was fabricated on annealed 42CrMo steel by high-frequency induction cladding combined with electric contact strengthening. The microstructure and mechanical properties of the coating were analyzed using a super-depth-of-field microscope, X-ray diffractometer, microhardness tester, and friction wear testing machine. The results show that the electrical contact strengthening treatment significantly refines the grain size of the WC/Ni60 coating and improves the density of the coating. After electric contact strengthening, new hard phases such as W2C, Cr7C3, and Cr23C6 are formed in the coating, and the microhardness of the coating increases from 600-650 HV0.2 to 700-900 HV0.2. The wear resistance of the coating after electric contact strengthening is outstanding, with the wear mass loss after 10 h of testing being only 18% and 13% of that of the non-strengthened coating and 42CrMo steel substrate, respectively, indicating a 5.6 and 7.7 times improvement in wear resistance.

Key words: high-frequency induction cladding, electric contact strengthening, WC/Ni60 coating, microstructure, microhardness, wear resistance

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