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Wide-Temperature-Range Tribological Properties of In Situ Ceramic-Reinforced TaMoTiCr Refractory High-Entropy Alloy Composites

  • Chenguang Gao
  • , Xuhui Pei
  • , Zhuo Chen
  • , Hanming Wang
  • , Mingchuan Hu
  • , Yin Du
  • , Haifeng Wang
  • Northwestern Polytechnical University Xian

Research output: Contribution to journalArticlepeer-review

Abstract

In-situ ceramic phase-reinforced TaMoTiCr refractory high-entropy alloy (RHEA) composites were prepared by spark plasma sintering with the addition of 2.5wt% and 5.0wt% h-BN, separately. Results show that the h-BN promotes the uniform formation of (Ti, Ta)N, TaB2, and MoB ceramic phases within the body-centered cubic matrix, significantly increasing microhardness to 1136.95 HV. Tribological test results show that the composite with the addition of 2.5wt% h-BN presents great performance at room temperature with an ultra-low wear rate of 1.64×10-7 mm3·N-1·m-1, while the composite with the addition of 5.0wt% h-BN shows optimal performance at 300 °C. Above 800 °C (elevated temperature condition), lubricious oxide tribolayers, rich in Cr2O3, TiO2, and B2O3, form on the material surface, effectively reducing friction and wear. At 1000 °C, the composite with the addition of 2.5wt% h-BN achieves a wear rate of 5.22×10-7 mm3·N-1·m-1. This in situ ceramic reinforcement approach effectively enhances wear resistance of RHEAs across a wide temperature range, offering great potential for advanced aerospace applications.

Translated title of the contribution原位陶瓷增强 TaMoTiCr 难熔高熵合金复合材料的宽温域摩擦学性能
Original languageEnglish
Pages (from-to)2165-2178
Number of pages14
JournalXiyou Jinshu Cailiao Yu Gongcheng/Rare Metal Materials and Engineering
Volume55
Issue number9
DOIs
StatePublished - Sep 2026

Keywords

  • in-situ ceramic phase
  • refractory high-entropy alloy ceramic composite
  • spark plasma sintering
  • tribological performance

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