SiC涂层在Cf/SiC复合材料上的异常高温氧化行为:从1200℃到1400℃的降解机制和微观组织演变

IF 12.7 1区 材料科学 Q1 ENGINEERING, MULTIDISCIPLINARY
Xiangyu Cai , Hongjiao Lin , Zhongyuan Sun , Lu Zhang , Songshan Jiang , Nan Meng , Zhixun Wen , Tao Feng , Shouyi Sun , Zhufeng Yue
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引用次数: 0

摘要

Cf/SiC复合材料上的SiC涂层在高温环境下氧化,与O2反应形成SiO2层。O2通过SiO2的低扩散速率强调了其增强抗氧化性的作用。对SiC涂层的Cf/SiC复合材料(Cf/SiC - SiC)进行预氧化,有利于形成保护性的SiO2层。该工艺显著提高了Cf/ SiC-SiO2复合材料的长期抗氧化性,其改善程度主要取决于预氧化温度、SiO2形成动力学、氧扩散速率和其他热力学因素。在本研究中,Cf/ SiC-SiC复合材料分别在1200°C、1300°C和1400°C等温氧化24 h、48 h、72 h和96 h。结果表明,在1300°C时,复合材料的失重率最低,抗氧化性能最佳。具体来说,从1200°C到1300°C,失重率呈连续下降趋势,在1300°C时达到最小值。然而,在1400°C时,失重率迅速增加,导致防护性能下降。这种现象可归因于不同温度下氧化层的密度、均匀性和流动性的变化。从原子应力、气体扩散和相变等方面讨论了差异的微观机制。利用反应分子动力学(MD)模拟和高温氧化实验对研究结果进行了综合分析和验证。利用透射电镜(TEM)、x射线衍射(XRD)和傅里叶变换红外光谱(FTIR)分析了氧化复合材料的微观组织演变和化学成分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anomalous high-temperature oxidation behavior of SiC coatings on Cf/SiC Composites: Degradation mechanisms and microstructural evolution from 1200 °C to 1400 °C
SiC coatings on Cf/SiC composites undergo oxidation in high-temperature environments, reacting with O2 to form SiO2 layers. The low diffusion rate of O2 through SiO2 underscores its role in enhancing oxidation resistance. Pre-oxidation of SiC coated Cf/SiC composites (Cf/SiC–SiC) facilitates the formation of a protective SiO2 layer. This process significantly enhances the long-term oxidation resistance of the resulting Cf/SiC–SiO2 composites, with the degree of improvement being critically dependent on pre-oxidation temperature, SiO2 formation kinetics, oxygen diffusion rates, and other thermodynamic factors. In this investigation, Cf/SiC–SiC composites were subjected to isothermal oxidation at 1200 °C, 1300 °C, and 1400 °C for durations of 24 h, 48 h, 72 h, and 96 h. Results showed that at 1300 °C, the composite exhibited the lowest weight loss rate and optimum oxidation resistance. Specifically, the weight loss rate exhibited a continuous decrease from 1200 °C to 1300 °C, reaching its minimum value at 1300 °C. However, weight loss rate rapidly increased at 1400 °C, leading to a diminished protective performance. This phenomenon can be attributed variations into the density, uniformity, and fluidity of the oxide layer at different temperatures. The microscopic mechanisms underlying the differences were discussed in terms of atomic stress, gas diffusion, and phase transformation. A comprehensive analysis and validation of the findings were conducted using reactive molecular dynamics (MD) simulations and high-temperature oxidation experiments. Additionally, Transmission Electron Microscopy (TEM), X-ray Diffraction (XRD), and Fourier Transform Infrared (FTIR) Spectroscopy, were utilized to analyze the microstructural evolution and chemical composition of the oxidized composites.
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来源期刊
Composites Part B: Engineering
Composites Part B: Engineering 工程技术-材料科学:复合
CiteScore
24.40
自引率
11.50%
发文量
784
审稿时长
21 days
期刊介绍: Composites Part B: Engineering is a journal that publishes impactful research of high quality on composite materials. This research is supported by fundamental mechanics and materials science and engineering approaches. The targeted research can cover a wide range of length scales, ranging from nano to micro and meso, and even to the full product and structure level. The journal specifically focuses on engineering applications that involve high performance composites. These applications can range from low volume and high cost to high volume and low cost composite development. The main goal of the journal is to provide a platform for the prompt publication of original and high quality research. The emphasis is on design, development, modeling, validation, and manufacturing of engineering details and concepts. The journal welcomes both basic research papers and proposals for review articles. Authors are encouraged to address challenges across various application areas. These areas include, but are not limited to, aerospace, automotive, and other surface transportation. The journal also covers energy-related applications, with a focus on renewable energy. Other application areas include infrastructure, off-shore and maritime projects, health care technology, and recreational products.
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