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September 17, 2025Lubricants2 citationsOpen Access

Effects of WC Addition on Microstructure and Properties of Plasma-Cladded AlCoCrFeNi High-Entropy Alloy Coatings

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XLXinbin LiuJZJuangang ZhaoTLTiansheng Li

Key Points

  • The addition of WC alters the microstructure of the high-entropy alloy, promoting a BCC matrix with embedded carbides.
  • Optimal coating properties were achieved with 20 wt% WC, leading to the lowest corrosion current density of 1.349 × 10−6 A·cm−2.
  • Mechanical tests showed that microhardness increased with WC content, peaking at 1066.36 HV at 30 wt% but stabilizing thereafter.
  • The coating's wear resistance was maximized at 20 wt% WC, with a significant reduction in wear mass loss by approximately 40% compared to the WC-free coating.

Abstract

In order to enhance the performance of 20# steel, this study successfully fabricated AlCoCrFeNi high-entropy alloy coatings with different WC contents (x = 0, 10, 20, 30 wt%) on its surface using plasma cladding technology. The effects of WC content on the microstructure, mechanical properties, and corrosion resistance of the coatings were systematically investigated. The results indicate that without WC addition, the coating consists of a dual-phase structure comprising BCC and FCC phases. With the incorporation of WC, the FCC phase disappears, and the coating evolves into a composite structure based on the BCC matrix, embedded with multiple carbide phases such as W2C, M7C3, MxCγ, and Co6W6C. These carbides are predominantly distributed along grain boundaries. As the WC content increases, significant grain refinement occurs and the volume fraction of carbides rises. The coating exhibits a mixed microstructure of equiaxed and columnar crystals, with excellent metallurgical bonding to the substrate. The microhardness of the coating increases markedly with higher WC content; however, the rate of enhancement slows when WC exceeds 20 wt%. The hardness of 1066.36 HV is achieved at 30 wt% WC. Wear test results show that both the friction coefficient and wear rate first decrease and then increase with increasing WC content. The optimal wear resistance is observed at 20 wt% WC, with a friction coefficient of 0.549 and a wear mass loss of only 0.25 mg, representing an approximately 40% reduction compared to the WC-free coating. Electrochemical tests demonstrate that the coating with 20 wt% WC facilitates the formation of a dense and stable passive film in NaCl solution, effectively inhibiting Cl− ion penetration. This coating exhibits the best corrosion resistance, characterized by the lowest corrosion current density of 1.349 × 10−6 A·cm−2 and the highest passive film resistance of 2764 Ω·cm2.

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Cite This Study

Liu et al. (2025) studied this question.

synapsesocial.com/papers/68d45e6a31b076d99fa5f121https://doi.org/10.3390/lubricants13090407
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