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Article

Effects of Pretreatment Processes on Grain Size and Wear Resistance of Laser-Induction Hybrid Phase Transformation Hardened Layer of 42CrMo Steel

1
College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310014, China
2
Institute of Laser Advanced Manufacturing, Zhejiang University of Technology, Hangzhou 310014, China
3
Zhejiang Provincial Innovation Center for Laser Intelligent Equipment Technology, Wenzhou 325000, China
4
College of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
5
College of Mechanical Engineering, Southwest Jiaotong University, Chengdu 611756, China
*
Author to whom correspondence should be addressed.
Materials 2025, 18(12), 2695; https://doi.org/10.3390/ma18122695
Submission received: 8 May 2025 / Revised: 3 June 2025 / Accepted: 5 June 2025 / Published: 7 June 2025
(This article belongs to the Section Metals and Alloys)

Abstract

To address the issue of surface grain coarsening in laser-induction hybrid phase transformation of 42CrMo steel, this study investigated the effects of four pretreatment processes (quenching–tempering (QT), laser-induction quenching (LIQ), laser-induction normalizing (LIN), and laser-induction annealing (LIA)) on the austenite grain size and wear resistance after laser-induction hybrid phase transformation. The results showed that QT resulted in a tempered sorbite structure, resulting in coarse austenite grains (139.8 μm) due to sparse nucleation sites. LIQ generated lath martensite, and its high dislocation density and large-angle grain boundaries led to even larger grains (145.5 μm). In contrast, LIN and LIA formed bainite and granular pearlite, respectively, which refined austenite grains (78.8 μm and 75.5 μm) through dense nucleation and grain boundary pinning. After laser-induction hybrid phase transformation, all specimens achieved hardened layer depths exceeding 6.9 mm. When the pretreatment was LIN or LIA, the specimens after laser-induction hybrid phase transformation exhibited surface microhardness values of 760.3 HV0.3 and 765.2 HV0.3, respectively, which were 12 to 15% higher than those of the QT- and LIQ-pretreated specimens, primarily due to fine-grain strengthening. The friction coefficient decreased from 0.52 in specimens pretreated by QT and LIQ to 0.45 in those pretreated by LIN and LIA, representing a reduction of approximately 20%. The results confirm that regulating the initial microstructure via pretreatment effectively inhibits austenite grain coarsening, thereby enhancing the microhardness and wear resistance after transformation.
Keywords: 42CrMo steel; laser-induction hybrid phase transformation; pretreatment process; austenite grain; wear-resistant properties 42CrMo steel; laser-induction hybrid phase transformation; pretreatment process; austenite grain; wear-resistant properties

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MDPI and ACS Style

Zhang, Q.; Shen, P.; Chen, Z.; Wu, G.; Li, Z.; Wang, W.; Yao, J. Effects of Pretreatment Processes on Grain Size and Wear Resistance of Laser-Induction Hybrid Phase Transformation Hardened Layer of 42CrMo Steel. Materials 2025, 18, 2695. https://doi.org/10.3390/ma18122695

AMA Style

Zhang Q, Shen P, Chen Z, Wu G, Li Z, Wang W, Yao J. Effects of Pretreatment Processes on Grain Size and Wear Resistance of Laser-Induction Hybrid Phase Transformation Hardened Layer of 42CrMo Steel. Materials. 2025; 18(12):2695. https://doi.org/10.3390/ma18122695

Chicago/Turabian Style

Zhang, Qunli, Peng Shen, Zhijun Chen, Guolong Wu, Zhuguo Li, Wenjian Wang, and Jianhua Yao. 2025. "Effects of Pretreatment Processes on Grain Size and Wear Resistance of Laser-Induction Hybrid Phase Transformation Hardened Layer of 42CrMo Steel" Materials 18, no. 12: 2695. https://doi.org/10.3390/ma18122695

APA Style

Zhang, Q., Shen, P., Chen, Z., Wu, G., Li, Z., Wang, W., & Yao, J. (2025). Effects of Pretreatment Processes on Grain Size and Wear Resistance of Laser-Induction Hybrid Phase Transformation Hardened Layer of 42CrMo Steel. Materials, 18(12), 2695. https://doi.org/10.3390/ma18122695

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