Enhanced microstructure as well as mechanical and oxidation resistance of C/C–SiC composites fabricated by RMI for thermal protection

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-10-23 DOI:10.1039/D5RA04829J
Yanli Huo, Yufeng Chen, Shouwan Qin, Hailin Liu, Hailong Liang, Jiajia Ma, Haoran Sun and Xiankai Sun
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引用次数: 0

Abstract

In this study, two-dimensional needle-punched laminated C fibres were used as preforms, and interfacial phases were prepared via chemical vapor infiltration (CVI) using pyrolytic carbon (CVI-PyC), sucrose-derived carbon (S/C), and pitch-derived carbon (P/C). The effects of interfacial phases on fibre coatings and siliconizing properties were investigated. The results demonstrated that the CVI-PyC interfacial phase is the most continuous and dense, providing the best protection effect on the fibres and forming a uniform cylindrical structure after siliconizing. The S/C interfacial phase is the second best; however, the matrix is fragmented after siliconizing. The P/C interfacial phase is the worst, leading to a lamellar surface structure and microcracks after siliconizing. Using CVI-PyC and S/C alternately as matrix carbon sources, C/C–SiC composites were synthesized via reactive melt infiltration, which comprised carbon fibres, SiC, and residual Si. According to mechanical property test results, the bending and tensile strengths of the prepared C/C–SiC composites were 345.4 and 156 MPa, respectively, which are considerably higher than those of single sucrose-derived carbon (134 and 75 MPa, respectively) and CVI-PyC matrix carbon (261.9 and 108 MPa, respectively). Oxidation-resistant coatings were prepared on the surface of the materials through chemical vapor deposition. High-temperature examination demonstrated that the coating effectively inhibited fibre oxidation, and the tensile strength retention rate reached 41% at 1500 °C in an oxygen environment, whereas the strength of the uncoated samples decreased to <10 MPa. This study provides an important reference for optimizing the interface design and high-temperature oxidation resistance of C/C–SiC composites.

Abstract Image

RMI制备的C/C - sic热防护复合材料的显微组织、力学性能和抗氧化性能得到了增强
本研究以二维针孔层状C纤维为预成型材料,采用化学气相渗透(CVI)法制备了热解碳(CVI- pyc)、蔗糖衍生碳(S/C)和沥青衍生碳(P/C)的界面相。研究了界面相对纤维涂层及硅化性能的影响。结果表明,CVI-PyC界面相连续致密,对纤维的保护效果最好,硅化后形成均匀的圆柱形结构。S/C界面相次之;然而,硅化后的基体破碎。P/C界面相最差,导致硅化后表面呈片层状结构,形成微裂纹。以CVI-PyC和S/C交替作为基体碳源,通过反应熔体浸润法制备了碳纤维、SiC和残余Si组成的C/C - SiC复合材料。力学性能测试结果表明,制备的C/C - sic复合材料的抗弯强度和抗拉强度分别为345.4和156 MPa,明显高于单蔗糖衍生碳(134和75 MPa)和CVI-PyC基体碳(261.9和108 MPa)。采用化学气相沉积法在材料表面制备了抗氧化涂层。高温测试表明,涂层有效地抑制了纤维的氧化,在1500℃的氧气环境下,涂层样品的抗拉强度保持率达到41%,而未涂层样品的强度下降到10 MPa。该研究为优化C/C - sic复合材料的界面设计和高温抗氧化性能提供了重要参考。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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