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April 18, 2026Materials0 citationsOpen Access

The Wear Resistance of Reinforced Coatings Fabricated by Three Different Processes on High-Density Tungsten Alloy

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LXLairong XiaoHCHongyang ChenFZFengju Zhang

Key Points

  • The aim is to evaluate the wear resistance of different coatings on tungsten alloys used in molds under harsh conditions.
  • Employed laser cladding, plasma spraying, and vacuum surface carburization to create coatings.
  • Used X-ray diffraction (XRD) and scanning electron microscopy (SEM) for phase and microstructure analysis.
  • Conducted Vickers hardness tests and block-on-ring friction and wear tests to assess hardness and wear resistance.
  • All coatings significantly increased the hardness of the tungsten heavy alloy substrate.
  • Plasma-sprayed coating showed optimal wear resistance, with only 0.16% and 0.18% wear volume at 50 N and 100 N loads, respectively.
  • The carburized layer had the highest hardness due to a continuous WC phase and absence of interfacial weak zones.

Abstract

To address the surface wear issues of tungsten alloys in die-casting mold applications—where low hardness coupled with severe service conditions involving high-pressure impact from molten metal, thermal cycling, and component counter-friction—this study employed three techniques: laser cladding, plasma spraying, and vacuum surface carburization. Three distinct strengthening coatings were prepared on a tungsten heavy alloy (WHA) substrate. X-ray diffraction (XRD), scanning electron microscopy (SEM), a Vickers hardness tester, and block-on-ring friction and wear tests were employed to characterize the phase composition, microstructure, hardness, and wear resistance of the coatings. The results indicate that all three coatings significantly enhanced the hardness of the substrate, albeit through different strengthening mechanisms. The hardness increase in the laser-clad coating is attributed to the combined strengthening effect of rapid solidification-induced fine grains and dispersed WC particles. The enhanced hardness of the plasma-sprayed coating is due to the intrinsic hardness of WC and its dense layered structure. The carburized layer exhibits the highest hardness, resulting from the continuous WC phase formed via in situ reaction and an interface-free gradient transition with the substrate, which eliminates interfacial weak zones. Under loads of 50 N and 100 N, the plasma-sprayed coating demonstrated the best wear resistance, with wear volumes of 0.16% and 0.18% of that of the substrate, and wear depths of 4.57% and 3.50% of that of the substrate, respectively. It also exhibited the optimal load adaptability, making it a preferred solution for surface strengthening of tungsten alloy die-casting molds.

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Cite This Study

Xiao et al. (2026) studied this question.

synapsesocial.com/papers/69e31ff140886becb653f106https://doi.org/10.3390/ma19081605
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