Chinese Journal of Lasers, Volume. 49, Issue 8, 0802023(2022)

Rolling Wear and Fatigue Damage Behavior of Laser-Induction Hybrid Quenching on 42CrMo Steel

Qunli Zhang1,2, Hua Huang1,2, Zehao Tang1,2, Guochang Li1,2, Qing’an Niu1,2, Zhijun Chen1,2, Yangqiong Du3, and Jianhua Yao1,2、*
Author Affiliations
  • 1Institute of Laser Advanced Manufacturing, Zhejiang University of Technology, Hangzhou, Zhejiang 310023, China
  • 2Collaborative Innovation Center of High-End Laser Manufacturing Equipment (National "2011 Plan" ), Zhejiang University of Technology, Hangzhou, Zhejiang 310023, China
  • 3Zhongzhe High-Speed Railway Bearing Co., Ltd., Quzhou, Zhejiang 324407, China
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    Figures & Tables(16)
    Microstructure of 42CrMo steel matrix
    Schematic of laser-induction hybrid quenching on 42CrMo steel
    Microhardness curves of laser-induction hybrid quenching hardened layers
    Physical model and locations of feature points
    Schematic of rolling wear test device
    Microstructure of laser-induction hybrid quenching hardened layer
    Residual stress distributions of hardened layer samples with different depths. (a) Residual stress distribution of 3.5 mm depth specimen along X direction; (b) residual stress distribution of 3.5 mm depth specimen along Y direction; (c) residual stress distribution of 4.5 mm depth specimen along X direction; (d) residual stress distribution of 4.5 mm depth specimen along Y direction; (e) residual stress distribution of 6.3 mm depth specimen along X direction; (f) residual stress distribution of 6.3 mm depth specimen along Y direction
    Surface damage morphologies of fatigue specimens with different depths of hardened layers. (a) Specimen with 3.5 mm depth; (b) specimen with 4.5 mm depth; (c) specimen with 6.3 mm depth
    Three-dimensional morphologies and two-dimensional profiles of cross-section for fatigue specimens with different depths of hardened layers. (a) Specimen with 3.5 mm depth; (b) specimen with 4.5 mm depth; (c) specimen with 6.3 mm depth
    Sectional crack morphology of fatigue specimen with hardened layer depth of 3.5 mm
    Sectional crack morphology of fatigue specimen with hardened layer depth of 4.5 mm
    Sectional crack morphology of fatigue specimen with hardened layer depth of 6.3 mm
    Schematic of surface cracking under heavy load condition
    Schematic of internal cracking under heavy load condition
    • Table 1. Chemical composition of 42CrMo steel

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      Table 1. Chemical composition of 42CrMo steel

      ElementCSiMnCrMoSPNiFe
      Mass fraction /%0.420.20.50.80.91.20.2≤0.035≤0.0350.03Bal.
    • Table 2. Element distribution in area A in Fig. 12

      View table

      Table 2. Element distribution in area A in Fig. 12

      ElementCOFeCrMnSiNiCuAlS
      Mass fraction /%5.17319.72071.8901.1201.3140.3630.1270.1840.0220.086
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    Qunli Zhang, Hua Huang, Zehao Tang, Guochang Li, Qing’an Niu, Zhijun Chen, Yangqiong Du, Jianhua Yao. Rolling Wear and Fatigue Damage Behavior of Laser-Induction Hybrid Quenching on 42CrMo Steel[J]. Chinese Journal of Lasers, 2022, 49(8): 0802023

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    Paper Information

    Category: laser manufacturing

    Received: Nov. 29, 2021

    Accepted: Jan. 10, 2022

    Published Online: Mar. 25, 2022

    The Author Email: Jianhua Yao (laser@zjut.edu.cn)

    DOI:10.3788/CJL202249.0802023

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