Study of C f /SiC Composites in Linear Scanning Ablation by Femtosecond Laser

ABSTRACT C f /SiC is a preferred material for high‐temperature‐resistant components in aerospace, but it is characterized by anisotropy, non‐homogeneity, and brittleness. Femtosecond laser processing technology, characterized by high precision and small heat‐affected zone, has great potential in processing C f /SiC. In response to the problem of unclear linear scanning ablation mechanism between laser and materials, this paper conducted femtosecond laser linear ablation and simulation experiments on C f /SiC composites, obtaining the development laws of electron as well as crystalline host lattice both in temperatures and physical morphology over time and space. The ablation mechanisms involving sublimation and ionization under femtosecond laser irradiation were revealed. It was found that laser power has a greater influence on ablation width, in comparison to scribing speed. Conversely, when compared to laser power, scribing speed has a more significant impact on ablation depth and micromorphology. Periodic structures emerged on the surface of the ablation groove in which laser power was below 2 W and the scribing speed was above 100 mm/s. The ablation parameters were optimized, providing theoretical support and data basis for high‐efficiency, high‐quality femtosecond laser processing of C f /SiC composites.

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Publication Details

Journal
Journal of the American Ceramic Society
Published
2026-09-28
DOI
https://doi.org/10.1111/jace.71273
Primary Topic
Laser Material Processing Techniques
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article
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article

Study of C f /SiC Composites in Linear Scanning Ablation by Femtosecond Laser

Zhigang Dong, 马广义, Yan Bao, Kang Renke et al.
Journal of the American Ceramic Society
Laser Material Processing Techniques
article

Study of C f /SiC Composites in Linear Scanning Ablation by Femtosecond Laser

Zhigang Dong, 马广义, Yan Bao, Kang Renke, Rongzhe Jiao, Zhaoji Li, Feng Yang
article en

Abstract

ABSTRACT C f /SiC is a preferred material for high‐temperature‐resistant components in aerospace, but it is characterized by anisotropy, non‐homogeneity, and brittleness. Femtosecond laser processing technology, characterized by high precision and small heat‐affected zone, has great potential in processing C f /SiC. In response to the problem of unclear linear scanning ablation mechanism between laser and materials, this paper conducted femtosecond laser linear ablation and simulation experiments on C f /SiC composites, obtaining the development laws of electron as well as crystalline host lattice both in temperatures and physical morphology over time and space. The ablation mechanisms involving sublimation and ionization under femtosecond laser irradiation were revealed. It was found that laser power has a greater influence on ablation width, in comparison to scribing speed. Conversely, when compared to laser power, scribing speed has a more significant impact on ablation depth and micromorphology. Periodic structures emerged on the surface of the ablation groove in which laser power was below 2 W and the scribing speed was above 100 mm/s. The ablation parameters were optimized, providing theoretical support and data basis for high‐efficiency, high‐quality femtosecond laser processing of C f /SiC composites.

Journal of the American Ceramic SocietyVol. 109(10)
Dalian University of Technology (CN)
Openalex Percentile: Top 14%
Laser Material Processing Techniques
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Study of C f /SiC Composites in Linear Scanning Ablation by Femtosecond Laser — Zhigang Dong, 马广义, et al. · Journal of the American Ceramic Society (2026) | TGRS Research Map | TGRS