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◆ Journal of Materials Research and Technology2026-04-01· Materials science

Synergistic improvement in wear and high-temperature oxidation resistance of Cr3C2 ceramic particles/heat-resistant stainless-steel composites

Yingfan Zhao, Xiaoxu Sun, Haotian Tao, Yutong Li, Yiwei Liang, Weiping Tong

原始摘要(英文原文)· Original abstract
In rotary hearth furnaces, the service life of spiral blades is determined by their high-temperature wear resistance. This study developed a Cr 3 C 2 ceramic particle/heat-resistant stainless-steel composite that combines both wear resistance and high-temperature performance, specifically targeting the limitations of conventional rotary blades, including insufficient wear resistance, short service life, and high costs. During the sintering process, partial dissolution of Cr 3 C 2 particles released C and Cr elements, which subsequently reacted with the metal matrix to form various carbo-borides, including M 7 C 3 -type carbides, MC-type carbides, M 2 (C, B)-type carbo-borides and M 23 (C, B) 6 -type carbo-borides. At room temperature, the composite with 25 wt.% Cr 3 C 2 demonstrated optimal wear resistance, achieving a hardness of 390.56 HV 10 (2.36 times the matrix material) and reducing wear volume loss to 0.0425 cm 3 (merely 29.07% of the matrix material, 0.1462 cm 3 ). Additionally, small addition of Cr 3 C 2 ceramic particles effectively improved high-temperature oxidation resistance. Composites with ≤20 wt.% Cr 3 C 2 exhibited superior high-temperature oxidation resistance compared to the matrix and reference sample Cr16. The optimal 15 wt.% Cr 3 C 2 composite formed the thinnest oxide layer (2 μm), consisting primarily of Cr 2 O 3 , Fe 2 O 3 , FeCr 2 O 4 , and NiFe 2 O 4 . Under high-temperature wear conditions at 800 °C, the composite containing 25 wt.% Cr 3 C 2 again demonstrated the optimal performance, exhibiting an average friction coefficient of 0.5658 and a wear scar width of 393 μm. In practical applications, the Cr 3 C 2 ceramic particles/heat-resistant stainless-steel composites demonstrated exceptional performance at 1200 °C, achieving 6∼7 times longer service life than conventional Cr28Ni20W20 materials in mixer screw blades.
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Synergistic improvement in wear and high-temperature oxidation resistance of Cr3C2 ceramic particles/heat-resistant stainless-steel composites — 科研速览 Science Skim