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May 7, 2026Coatings0 citationsOpen Access

Effect of Heat Input on Wear Performance of Laser-Clad WC/W2C Reinforced CoNiV Medium-Entropy Alloy Composite Coatings

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JYJie YangZDZhaoyu DongXBXin Bao

Key Points

  • To evaluate how different heat inputs affect the wear performance of laser-clad tungsten carbide reinforced composite coatings.
  • Fabrication of CoNiV medium-entropy alloy composite coatings with 40 wt.% tungsten carbide via laser cladding.
  • Investigation of phase constituents and microstructural evolution under varying heat inputs from 75 to 150 J/mm.
  • Assessment of microhardness and wear resistance of the coatings.
  • Coatings exhibited peak microhardness of 570.5 HV0.5 at high heat input with coarse carbides.
  • Optimal wear performance achieved at intermediate heat input (100 J/mm) with fine carbides.
  • Excessive dissolution at high heat inputs led to fragmentation and increased abrasive wear.

Abstract

CoNiV medium-entropy alloy (MEA) composite coatings reinforced with 40 wt.% tungsten carbide (WC/W2C) particles were fabricated on carbon steel via laser cladding under nominal heat inputs ranging from 75 to 150 J/mm. The phase constituents and microstructural evolution were investigated, revealing that the coatings were primarily composed of an FCC matrix, retained WC/W2C particles, and in situ formed V-rich and VWC2 carbides. While the phase compositions remained generally consistent, the features of the reinforcement architecture varied with the extent of WC/W2C dissolution governed by laser heat inputs. At low heat inputs, limited particle dissolution yielded sparsely distributed in situ carbides, whereas excessive dissolution at high heat inputs promoted the agglomeration of dense and coarse carbides, driving the microhardness to peak at 570.5 HV0.5. However, the coating deposited at 150 J/mm exhibited compromised wear resistance due to the fragmentation and detachment of these coarse carbides, which intensified abrasive wear. In contrast, moderate dissolution at intermediate heat input (100 J/mm) facilitated the formation of fine in situ carbides in interparticle regions. This resulted in a homogeneous multiscale synergistic reinforcement microstructure that endowed the coating with optimal wear performance. By precisely controlling heat input to regulate in-situ precipitation, this study established a solid foundation for tailoring wear resistance and expanding the application of composite coatings.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/69fbe3ca164b5133a91a3066https://doi.org/10.3390/coatings16050518
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Also Consider

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