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February 2, 2026Crystals2 citationsOpen Access

Microstructure and Mechanical Properties of Equiatomic CoCrFeNiMn High-Entropy Alloy Coatings Fabricated by High-Velocity Oxygen Fuel Spraying

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YKYedilzhan KambarovZSZhuldyz SagdoldinaLSLaila Sulyubayeva

Key Points

  • The research aims to explore how the oxygen/fuel ratio during the HVOF process influences the microstructure and mechanical properties of CoCrFeNiMn coatings.
  • Coatings were fabricated using the HVOF process with kerosene as fuel.
  • Microstructural characteristics were analyzed using XRD, SEM, and EDS.
  • Mechanical and tribological properties were evaluated post-fabrication.
  • Thermodynamic predictions were made using the Scheil model and Thermo-Calc software.
  • The coatings exhibited high microhardness, reaching 783.8 HV.
  • The best wear resistance was noted with a minimum wear rate of 7.45 × 10−5 mm3 × N−1 × m−1.
  • The findings support thermodynamic predictions for high-entropy alloys under non-equilibrium conditions.

Abstract

High-entropy coatings based on CoCrFeNiMn obtained by thermal spraying have demonstrated the potential to improve the wear resistance of traditional materials used in extreme conditions. The aim of the work was to study the effect of the oxygen/fuel ratio when using kerosene as fuel in the HVOF process on the microstructural characteristics of CoCrFeNiMn coatings, including phase composition, microhardness, elastic modulus, and wear resistance. Phase and microstructural transformations in gas-atomized powder during HVOF spraying were analyzed using XRD, SEM, and EDS methods. The tribological and mechanical properties of the coatings obtained were also evaluated. The results obtained are consistent with thermodynamic predictions based on the Scheil model for non-equilibrium conditions. The data obtained indicate the high potential of high-entropy CoCrFeNiMn alloys for use as protective coatings for industrial purposes. In addition, the results of the study emphasize the promise of using thermodynamic prediction of high-entropy alloys using Thermo-Calc software. The best mechanical and tribological properties were obtained in the HVOF 1 regime, which provided a maximum microhardness of 783.8 HV and a minimum wear rate of 7.45 × 10−5 mm3 × N−1 × m−1.

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Cite This Study

Kambarov et al. (2026) studied this question.

synapsesocial.com/papers/6980fe35c1c9540dea81023dhttps://doi.org/10.3390/cryst16020103
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