Effect of heat treatment temperature on microstructure and properties of SiC/FeCoNiCrAl high-entropy alloy composite coatings via laser cladding

To optimize the microstructure and performance of laser-cladded 5 wt.% SiC/FeCoNiCrAl high-entropy alloy (HEA) composite coatings, this study investigated heat treatments at 700°C, 800°C, and 900°C. XRD, SEM, and EDS analyses reveal that post-treatment coatings retain a dual-phase FCC and BCC solid solution structure, accompanied by the precipitation of a Cr 2 Fe 14 C phase. The microstructural evolution exhibited a clear temperature-dependent behavior: static recovery predominated at 700°C, complete recrystallization occurred at 800°C with the formation of fine and uniform equiaxed grains, whereas abnormal grain growth occurred at 900°C. With increasing temperature, residual stress shows a non-monotonic trend, reaching a minimum of 272.4 MPa at 800°C, while elemental segregation is effectively mitigated. The 800°C heat-treated coating exhibits the optimal comprehensive performance: the highest microhardness (584 HV 0.5 ), lowest wear rate (1.07 × 10 -5 mm 3 /(N·m)), shallowest wear depth (19.42 μm), and minimal corrosion current density (813.103 μA·cm -2 ), significantly outperforming all other samples. These mechanical and anti-corrosion enhancements stem from the synergistic effects of precipitation strengthening and microstructural homogenization. Ultimately, identifying 800°C as the optimal parameter provides a robust theoretical foundation for applying tailored HEA coatings to mechanical components under severe working conditions.

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Publication Details

Journal
Journal of Composite Materials
Published
2026-08-28
DOI
https://doi.org/10.1177/00219983261484836
Primary Topic
High Entropy Alloys Studies
Type
article
Field-Weighted Citation Impact
0.00

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article

Effect of heat treatment temperature on microstructure and properties of SiC/FeCoNiCrAl high-entropy alloy composite coatings via laser cladding

Kai Zhang, Weijun Liu, Tianqing Ye, Shichen Wang et al.
Journal of Composite Materials
High Entropy Alloys Studies
article

Effect of heat treatment temperature on microstructure and properties of SiC/FeCoNiCrAl high-entropy alloy composite coatings via laser cladding

Kai Zhang, Weijun Liu, Tianqing Ye, Shichen Wang, Diankai Hou, Huiru Wang, Wenlong Wang
article en

Abstract

To optimize the microstructure and performance of laser-cladded 5 wt.% SiC/FeCoNiCrAl high-entropy alloy (HEA) composite coatings, this study investigated heat treatments at 700°C, 800°C, and 900°C. XRD, SEM, and EDS analyses reveal that post-treatment coatings retain a dual-phase FCC and BCC solid solution structure, accompanied by the precipitation of a Cr 2 Fe 14 C phase. The microstructural evolution exhibited a clear temperature-dependent behavior: static recovery predominated at 700°C, complete recrystallization occurred at 800°C with the formation of fine and uniform equiaxed grains, whereas abnormal grain growth occurred at 900°C. With increasing temperature, residual stress shows a non-monotonic trend, reaching a minimum of 272.4 MPa at 800°C, while elemental segregation is effectively mitigated. The 800°C heat-treated coating exhibits the optimal comprehensive performance: the highest microhardness (584 HV 0.5 ), lowest wear rate (1.07 × 10 -5 mm 3 /(N·m)), shallowest wear depth (19.42 μm), and minimal corrosion current density (813.103 μA·cm -2 ), significantly outperforming all other samples. These mechanical and anti-corrosion enhancements stem from the synergistic effects of precipitation strengthening and microstructural homogenization. Ultimately, identifying 800°C as the optimal parameter provides a robust theoretical foundation for applying tailored HEA coatings to mechanical components under severe working conditions.

Journal of Composite Materials
Shenyang University of Technology (CN)
Key Research and Development Program of Liaoning Province
Openalex Percentile: Top 19%
High Entropy Alloys Studies
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