FCC/FCC structural compatibility enabling synergistic lubrication, anti-wear and cavitation erosion of Al10Cr28Co28Ni34/Ag composite coating in aviation kerosene
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FCC/FCC structural compatibility enabling synergistic lubrication, anti-wear and cavitation erosion of Al10Cr28Co28Ni34/Ag composite coating in aviation kerosene

08/10/2026 TranSpread

Background

As the “heart” of an aero-engine, the performance and reliability of the fuel pump directly affect flight safety. The thrust bearing is a critical support component inside the pump, which bears the axial load transmitted from the gears through end-face contact, maintains positioning accuracy, and provides sealing. Aviation kerosene has an extremely low viscosity, making it difficult to form a continuous and stable oil film at the contact interface between the bearing and the gears under high-speed rotation. This not only readily leads to lubrication failure and bearing wear, but also easily induces cavitation, causing cavitation erosion damage, ultimately affecting the fuel delivery efficiency.

Although existing coating materials, represented by bonded solid lubricating coatings (BSLCs), can address the problem of wear under oil-starved conditions, they struggle to simultaneously provide cavitation erosion protection. The key difficulties lie in: I) the matrix phase of traditional coatings, such as organic resins, has insufficient strength and poor heat resistance, making them prone to fracture failure under the combined action of intense impact loads and cavitation heat generated by bubble collapse; II) the substantial property mismatch between the matrix phase and the lubricating phase leads to incompatible deformation behaviors under external forces, causing cracking at phase boundaries and accelerating the selective removal of lubricant fillers; III) conventional materials used as the coating matrix phase find it difficult to achieve a balance between friction reduction, wear resistance, and cavitation erosion resistance.

Through a literature review of metallic materials that exhibit good lubricating properties and cavitation erosion resistance, we found that most of them are predominantly FCC‑structured, including solid lubricants (e.g., Au, Ag, Cu) and cavitation erosion-resistant alloys such as aluminum bronze, nickel-aluminum bronze, and the Al10Cr28Co28Ni34 high-entropy alloy (HEA). This is likely attributable to the abundant slip systems in FCC structures, which promote slip under shear forces and accommodate greater deformation under impact loading, thereby reducing friction and dissipating impact energy, respectively. Owing to the four core effects, the Al10Cr28Co28Ni34 HEA not only possesses the high work-hardening capacity intrinsic to FCC metals but also exhibits substantially higher strength than conventional FCC counterparts. This allows it to confine deformation caused by load impact within a certain range, resulting in exceptionally excellent cavitation erosion resistance. Inspired by this, the present work(doi: https://doi.org/10.3724/trad-20260019) proposes a research approach that exploits the structural compatibility between the Al10Cr28Co28Ni34 HEA and Ag to design and fabricate a composite coating integrating lubricating, wear resistance and cavitation erosion protection, aiming to more effectively address the combined damage caused by wear and cavitation erosion in fuel pump friction pairs.

Highlights

  • Proposed FCC/FCC structural compatible design to reduce cavitation erosion and wear
  • Coordinated structure response to force yields uniform to fatigue-resistant coating
  • HEA’s load-bearing and Ag’s low-shear film formation solves oil-starved lubrication
  • Formation of spherical particles and rolling-sliding mechanism have been proved
  • Achieving near-zero wear and long-term cavitation erosion resistance in one coating

###

References

DOI

10.3724/trad-20260019

Original Source URL

https://doi.org/10.3724/trad-20260019

Funding information

This research was financially supported by the National Science and Technology Major Project (Grant No. J2022-VI-0006-0037), the National Natural Science Foundation of China, China (Grant No. 52175200), the Strategic Priority Research Program of the Chinese Academy of Sciences, China (Grant No. XDB0470102), the Youth Innovation Promotion Association of the Chinese Academy of Sciences, China (Grant No. 2020416), and the Longyuan Youth Talent Project. The authors appreciate the helpful comments of reviewers.

About Tribology Advances

Tribology Advances aims to serve as a premier platform for scientists, engineers, and researchers worldwide to disseminate cutting-edge discoveries and foster global academic exchange including but not limited to the following topics: lubricating materials, tribological design and calculation, surface/interface engineering, micro/nano tribology, industrial tribology, and frontier of tribology, etc.

Paper title: FCC/FCC structural compatibility enabling synergistic lubrication, anti-wear and cavitation erosion of Al10Cr28Co28Ni34/Ag composite coating in aviation kerosene
Attached files
  • In this study, the newly designed and fabricated Al10Cr28Co28Ni34/Ag HEA composite coating with a dual‑phase FCC structure can fully exploit the advantages of FCC‑structured metals in friction reduction and deformation energy absorption, as well as the strengths of HEA in strengthening and load‑bearing capacity, enabling Ag to provide effective low‑shear lubrication under oil‑starved conditions. Furthermore, the stable tribological interface promotes the dynamic formation of tribo-films (e.g., carbon films, micron‑sized spherical particles) in aviation kerosene, thereby achieving a synergistic lubrication and anti‑wear mechanism that combines solid‑liquid lubrication with rolling‑sliding motion under surface contact. Consequently, the coating achieves a friction coefficient below 0.1 and a near‑zero wear rate in aviation kerosene, demonstrating excellent tribological performance.
  • Owing to the high load‑bearing capacity and deformation energy dissipation capability of the HEA phase in the Al10Cr28Co28Ni34/Ag HEA composite coating, the coating exhibits a cavitation erosion mass loss of less than 0.1 mg/h in aviation kerosene, demonstrating good cavitation erosion resistance and showing certain application potential for surface protection of thrust bearings.
08/10/2026 TranSpread
Regions: North America, United States, Asia, China
Keywords: Science, Physics

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