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필라멘트 와인딩 공법으로 제작한 Cf/SiC-ZrB2 복합체의 고온 산소-아세틸렌 토치 평가 KCI 등재 SCOPUS

High-Temperature Oxy-Acetylene Torch Test of Filament-Wound Cf/SiC-ZrB2 Composite Ring

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한국재료학회지 (Korean Journal of Materials Research)
한국재료학회 (Materials Research Society Of Korea)
초록

Composites of carbon fiber-reinforced silicon carbide (Cf/SiC) with ultra-high temperature ceramics (UHTCs) exhibit superior resistance to oxidation and ablation under high temperatures. Components in large-scale applications often have complex geometries, making it crucial to understand the oxidation and ablation behaviors of curved and non-uniform surfaces. In this study, a Cf/SiC-ZrB2 composite was fabricated into a 300 mm cylindrical shape using filament winding and liquid silicon infiltration processes. The resulting specimens exhibited a uniform microstructure, with SiC and ZrB2 crystals evenly distributed across the top and bottom surfaces, demonstrating the feasibility of producing large-scale composites. The specimens underwent an oxyacetylene torch test at 2,100 K for 5 min to assess their ablation and oxidation performance. The results revealed significant variation in the oxide layer due to the non-flat surface, with the layer thickness gradually decreasing as the oblique angle was reduced. Additionally, the presence of high-melting-point ZrO2 in the oxide layer near the torch center was attributed to the migration and solidification of molten SiO2. This suggests that large and complex Cf/SiC incorporating UHTCs can effectively form a protective oxide layer, even under conditions where SiO2 displacement occurs. The findings underscore the importance of integrating geometric considerations into the design of ultra-high temperature ceramic composites to achieve the thermal and ablation resistance required for advanced high-temperature applications.

목차
Abstract
1. 서 론
2. 실험 방법
    2.1. Cf/SiC-ZrB2 복합체 제작
    2.2. 산소-아세틸렌 토치 평가
    2.3. 특성 분석
3. 결과 및 고찰
4. 결 론
Acknowledgement
References
<저자소개>
저자
  • 조윤재(한국과학기술원 신소재공학과) | Yoonjae Cho (Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea)
  • 이승용(한국과학기술원 신소재공학과) | Seung Yong Lee (Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea)
  • 공정훈(한국과학기술원 신소재공학과) | Jung Hoon Kong (Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea)
  • 김상현(한국과학기술원 신소재공학과) | Sanghyeon Kim (Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea)
  • 최재형(한국과학기술원 신소재공학과) | Jae-Hyeong Choi (Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea)
  • 김도경(한국과학기술원 신소재공학과) | Do Kyung Kim (Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology, Daejeon 34141, Republic of Korea) Corresponding author