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March 3, 2026Advanced Composites and Hybrid Materials1 citationsOpen Access

Achieving super wear resistance in additively manufactured eutectic high-entropy alloys via self-hardening design at intermediate temperatures

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YSYixuan SunCWChunjin WangRGRui Gao

Key Points

  • The alloy achieves an ultralow wear rate of 6.20 × 10⁻⁵ mm³/N·m at 600 °C, significantly lower than conventional materials.
  • Eutectic high-entropy alloy design incorporates titanium for enhanced structural stability and wear resistance.
  • Rapid additive manufacturing produces a refined microstructure, enhancing tribological performance through ultrafine grains.
  • This approach may enable the development of materials resistant to wear at intermediate temperatures, addressing current limitations.

Abstract

Interfacial degradation, oxidative damage, and fatigue cracking pose persistent challenges to structural alloys operating in the intermediate-temperature regime (400–600 °C), often resulting in accelerated wear and premature failure. To address this, we design a multicomponent Ti-containing eutectic high-entropy alloy (EHEA) via additive manufacturing (AM) and targeted Ti alloying to engineer a thermally stable, refined microstructure tailored for enhanced tribological performance. The resulting alloy achieves an ultralow wear rate of 6.20 × 10⁻⁵ mm³/N·m at 600 °C—approximately 86% lower than that of conventional Ni-based superalloys. Microstructural analyses reveal that rapid AM solidification produces ultrafine equiaxed grains with > 90% high-angle grain boundaries, stabilized by Ni segregation and contributing to robust Hall–Petch strengthening. Ti addition not only stabilizes the B2 phase (~ 87 vol%) but also promotes the selective formation of dense Al₂O₃/Cr2O3 oxide scales, which suppress oxidative wear. Further friction triggers the in-situ formation of Ni-rich hexagonal close-packed (HCP) nanoprecipitates, which accommodate strain and provide in-situ self-hardening. The multi-structural system enables the alloy to overcome the temperature–wear trade-off typically observed in conventional HEAs at intermediate temperatures. This study establishes a new alloy design strategy that integrates AM-enabled grain boundary engineering with element-specific oxidation control to realize wear-resistant structural materials for intermediate-temperature applications.

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Cite This Study

Sun et al. (2026) studied this question.

synapsesocial.com/papers/69a7663fbadf0bb9e87dc49ehttps://doi.org/10.1007/s42114-026-01649-2
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