Novel high-entropy ultra-high temperature ceramics with enhanced ablation resistance

Ultra-high temperature ceramics (UHTCs) offer great potential for applications in extreme service environments, such as hypersonic vehicles, rockets and re-entry spacecraft. However, the severe ablation caused by high-speed heat flow scouring and high-temperature oxidation limits the engineering app...

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Veröffentlicht in:Rare metals 2024-12, Vol.43 (12), p.6559-6570
Hauptverfasser: Zhang, Pan, Liu, Xiong-Jun, He, Guang-Yu, Chiang, Fu-Kuo, Wang, Hui, Wu, Yuan, Jiang, Sui-He, Zhang, Xiao-Bin, Lu, Zhao-Ping
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Sprache:eng
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Zusammenfassung:Ultra-high temperature ceramics (UHTCs) offer great potential for applications in extreme service environments, such as hypersonic vehicles, rockets and re-entry spacecraft. However, the severe ablation caused by high-speed heat flow scouring and high-temperature oxidation limits the engineering application of UHTCs. In this work, we report a novel high-entropy UHTC (Ti 0.2 Zr 0.2 V 0.2 Nb 0.2 Cr 0.2 )(C 0.5 N 0.5 ), which exhibits superior ablation resistance and light weight compared with traditional UHTCs. Specifically, at a temperature of 2650 K, the mass ablation rate of the material was measured as 1.025 × 10 −2  g·s −1 , and the density was calculated to be 6.7 g·cm −3 . The impressive ablation resistance of (Ti 0.2 Zr 0.2 V 0.2 Nb 0.2 Cr 0.2 )(C 0.5 N 0.5 ) is attributed to the incorporation of a self-healing mechanism, which is associated with the in-situ formation of a medium-entropy oxide (TiVCr)O 2 during the ablation process. The medium-entropy oxide can seal pores and cracks to retard oxygen diffusion and prevent the material from fragmentation, thereby resulting in outstanding ablation resistance. Graphical abstract
ISSN:1001-0521
1867-7185
DOI:10.1007/s12598-024-02904-5