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February 8, 2026Coatings1 citationsOpen Access

Microstructure and Mechanical Properties of Laser-Clad Stellite 6 Coatings with Thermal Field Assistance

QCQing ChenYSYu SunXDXuxing Duan

Key Points

  • The research aims to explore the effects of thermal field assistance on the microstructure and mechanical properties of laser-clad Stellite 6 coatings.
  • Produced single-layer, multi-track coatings at varying induction powers (0, 300, 600, 900 W).
  • Characterized coatings using LSCM, OM, XRD, SEM, EDS, EBSD, and TEM.
  • Evaluated microhardness and tensile properties of coatings.
  • Thermal assistance improved surface finish, with minimum Sa of 16.67 μm at 600 W.
  • Hardness decreased from 537.1 to 461.5 HV0.1 with increasing induction power.
  • Yield/ultimate strengths reduced from 1046/1512 MPa to 849/1423 MPa, while elongation increased from 4.37% to 6.27%.

Abstract

This study examines in situ induction-heating thermal field assistance during laser cladding of Stellite 6 on 17-4PH stainless steel. Single-layer, multi-track coatings (~2.3 mm) were produced at induction powers of 0, 300, 600, and 900 W while keeping laser parameters constant. Surface morphology, phase constituents, and microstructures were characterized by LSCM, OM, XRD, SEM, EDS, and EBSD, and nanoscale features were probed by TEM for the 600 W condition; microhardness and coating-only tensile properties were evaluated. Thermal assistance improved surface finish (minimum Sa = 16.67 μm at 600 W) and suppressed hot cracking. XRD/EBSD revealed a γ-Co matrix with interdendritic carbides and an increased ε-Co fraction under thermal assistance; TEM further showed stacking-fault lamellae and a distinct FCC/HCP interface, supporting a fault-assisted, diffusionless γ → ε transformation. Increasing induction power coarsened the microstructure (larger DE and SDAS), decreasing hardness from 537.1 to 461.5 HV0.1 and lowering yield/ultimate strengths from 1046 MPa and 1512 MPa to 849 MPa and 1423 MPa, while elongation increased from 4.37% to 6.27%. Considering crack-free valve hardfacing with acceptable strength loss and improved ductility, 600 W provides the best overall performance.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/6988277b0fc35cd7a8846371https://doi.org/10.3390/coatings16020200
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