Ablation‐Immune Thermal Armor Via Microstructural‐Compatibility Design for Extreme Thermal Conditions

ABSTRACT To overcome the brittleness and microstructural degradation of ultrahigh temperature ceramics (UHTCs) in hypersonic thermal protection systems, this work develops a C/C‐ZrC‐SiC/ZrC‐SiC composite via a microstructural‐compatibility design that integrates reactive melt infiltration with supersonic atmospheric plasma spraying. Critically, this work strategically incorporated SiC as a dispersed phase in the ZrC coating to actively regulate the deposition thermodynamics and oxidation kinetics, which suppresses the formation of continuous, lamellar ZrO 2 interlayers and mitigates residual stress. Consequently, the designed composite demonstrates exceptional ablation resistance, withstanding oxyacetylene ablation (2200°C) for 3080 s and Ar‐H 2 plasma ablation (2600°C) for 1500 s, while achieving an ultralow linear ablation rate on the order of 10 −5 mm s −1 . This work validates a microstructural‐compatibility‐led design principle, providing a foundational blueprint for developing thermal protection systems.

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Publication Details

Journal
Advanced Science
Published
2026-08-31
DOI
https://doi.org/10.1002/advs.77482
Primary Topic
Advanced ceramic materials synthesis
Type
article
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article

Ablation‐Immune Thermal Armor Via Microstructural‐Compatibility Design for Extreme Thermal Conditions

Qiangang Fu, Jia Sun, Yuyu Zhang, Lingxiang Guo et al.
Advanced Science
Advanced ceramic materials synthesis
article

Ablation‐Immune Thermal Armor Via Microstructural‐Compatibility Design for Extreme Thermal Conditions

Qiangang Fu, Jia Sun, Yuyu Zhang, Lingxiang Guo, Ziyi Yi, Hongkang Ou, Bing Liu
article en

Abstract

ABSTRACT To overcome the brittleness and microstructural degradation of ultrahigh temperature ceramics (UHTCs) in hypersonic thermal protection systems, this work develops a C/C‐ZrC‐SiC/ZrC‐SiC composite via a microstructural‐compatibility design that integrates reactive melt infiltration with supersonic atmospheric plasma spraying. Critically, this work strategically incorporated SiC as a dispersed phase in the ZrC coating to actively regulate the deposition thermodynamics and oxidation kinetics, which suppresses the formation of continuous, lamellar ZrO 2 interlayers and mitigates residual stress. Consequently, the designed composite demonstrates exceptional ablation resistance, withstanding oxyacetylene ablation (2200°C) for 3080 s and Ar‐H 2 plasma ablation (2600°C) for 1500 s, while achieving an ultralow linear ablation rate on the order of 10 −5 mm s −1 . This work validates a microstructural‐compatibility‐led design principle, providing a foundational blueprint for developing thermal protection systems.

Advanced Science
Northwestern Polytechnical University (CN)
Industry, innovation and infrastructure
Openalex Percentile: Top 22%
Advanced ceramic materials synthesis
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