Please wait a minute...
材料导报  2023, Vol. 37 Issue (16): 21090178-10    https://doi.org/10.11896/cldb.21090178
  无机非金属及其复合材料 |
C/SiC陶瓷基复合材料研究与应用现状
关洪达1, 张涛1,2, 何新波1,2,*
1 北京科技大学新材料技术研究院,北京 100083
2 北京科技大学广州新材料研究院,广州 510330
Current Status of the Research and Applications of C/SiC Ceramic Matrix Composites
GUAN Hongda1, ZHANG Tao1,2, HE Xinbo1,2,*
1 Institute for Advanced Materials and Technology, University of Science and Technology Beijing, Beijing 100083, China
2 New Materials Research Institute Guangzhou, University of Science and Technology Beijing, Guangzhou 510330, China
下载:  全 文 ( PDF ) ( 8990KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 碳纤维增强碳化硅(C/SiC)陶瓷基复合材料具有低密度、高强度、耐高温、耐磨等综合性能,已成为重要的热结构材料体系之一,目前已成功应用于航空发动机热结构部件、飞行器热防护系统、制动系统以及核结构部件等。本文主要综述了C/SiC陶瓷基复合材料在制备方法和应用领域的研究进展,介绍了一系列具有代表性的C/SiC复合材料的制备方法,重点关注多种制备方法相结合的混合工艺,概述了C/SiC复合材料在航空航天热结构和热防护、刹车材料、空间相机结构等领域的应用,展望了更优异的混合制备工艺以及针对不同应用要求的复合材料新体系,以便为今后C/SiC陶瓷基复合材料的进一步研究提供参考。
服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
关洪达
张涛
何新波
关键词:  碳纤维  碳化硅  碳纤维增强陶瓷基复合材料  混合工艺  热防护  刹车材料    
Abstract: Carbon fiber reinforced silicon carbide (C/SiC) ceramic matrix composites have comprehensive properties such as low density, high strength, high temperature resistance and wear resistance, and have become one of the important thermal structural material systems. At present, it has been successfully applied to aero-engine thermal structural components, aircraft thermal protection systems, braking systems and nuclear structural components. In this paper, the research progress in preparation and application of C/SiC ceramic matrix composites is reviewed. A series of representative preparation methods of C/SiC composites are introduced, with emphasis on the hybridization process combining various preparation methods. The applications of C/SiC composites in the fields of aerospace thermal structure and thermal protection, brake materials and space camera structures are summarized. A more excellent hybrid preparation process and a new composite material system for different application requirements are prospected. The paper is expected to provide a reference for further research on C/SiC ceramic matrix composites in the future.
Key words:  carbon fiber    silicon carbide    carbon fiber reinforced ceramic matrix composites    hybrid technique    thermal protection    brake material
出版日期:  2023-08-25      发布日期:  2023-08-14
ZTFLH:  TB332  
基金资助: 国家自然科学基金(51274040)
通讯作者:  *何新波,北京科技大学新材料技术研究院教授、博士研究生导师。2002年晋升副教授,同年从浙江大学博士后出站,进入北京科技大学工作。2006年,获得博士学位研究生指导教师资格,同年7月破格晋升为教授。2004年入选北京市“科技新星计划”;2006年入选教育部“新世纪优秀人才支持计划”;2009年入选“北京市优秀人才培养资助计划”。近年来,主持或承担过国家973和863计划项目、国家科技支撑计划、国家科技重大专项、国家重点研发项目、国家自然科学基金、国防基础科研项目、军品配套项目等20余项科研课题。共发表学术论文100多篇;申请国家发明专利40余项;获省部级技术发明一等奖2项、军队和省部级科技进步二等奖4项。主要从事粉末冶金金属基复合材料、新型电子封装材料以及高温陶瓷基复合材料等的研究与应用。xbhe@ustb.edu.cn   
作者简介:  关洪达,2020年6月毕业于昆明理工大学,获得工学硕士学位。现为北京科技大学新材料技术研究院博士研究生,在何新波教授的指导下进行研究。目前主要研究领域为连续碳纤维增强陶瓷基复合材料。
引用本文:    
关洪达, 张涛, 何新波. C/SiC陶瓷基复合材料研究与应用现状[J]. 材料导报, 2023, 37(16): 21090178-10.
GUAN Hongda, ZHANG Tao, HE Xinbo. Current Status of the Research and Applications of C/SiC Ceramic Matrix Composites. Materials Reports, 2023, 37(16): 21090178-10.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.21090178  或          http://www.mater-rep.com/CN/Y2023/V37/I16/21090178
1 Wang X, Gao X, Zhang Z,et al. Journal of the European Ceramic Society, 2021, 41(9), 4671.
2 Lu Y J, Wang Y M, Wu L E. Materials Reports, 2010, 24(21), 14 (in Chinese).
陆有军, 王燕民, 吴澜尔. 材料导报, 2010, 24(21), 14.
3 Yin X W, Cheng L F, Zhang L T,et al. International Materials Reviews, 2016, 62(3), 117.
4 Chen Z Y, Liu J S, Xu Y Q, et al. Journal of Ceramics, 2019, 40(6), 701 (in Chinese).
陈智勇, 刘建寿, 徐颖强,等. 陶瓷学报, 2019, 40(6), 701.
5 Park S J. Springer, 2015, 210, 31.
6 Hu L H, Tsai Y T. Composites Science and Technology, 2022, 221, 109294.
7 Zhang L, Ren C, Ji C, et al. Applied Surface Science, 2016, 366, 424.
8 Binner J, Porter M, Baker B, et al. International Materials Reviews, 2019, 65(7), 389.
9 Chen M W, Xie W J, Qiu H P. Advanced Ceramics, 2016, 37(6), 393 (in Chinese).
陈明伟, 谢巍杰, 邱海鹏. 现代技术陶瓷, 2016, 37(6), 393.
10 Jiao H W, Chen B, Zuo B. Journal of Aeronautical Materials, 2021, 41(1), 19 (in Chinese).
焦浩文, 陈冰, 左彬. 航空材料学报, 2021, 41(1), 19.
11 Wang J, Zhang Y, Liu Y, et al. Ceramics International, 2020, 46(8), 11743.
12 Chang Y, Sun W, Xiong X, et al. Ceramics International, 2016, 42(15), 16906.
13 Xiang Y, Liu Y, Cai H F, et al. Composites Part B: Engineering, 2015, 79, 204.
14 He Q, Li H, Wang C, et al. Ceramics International, 2019, 45(3), 3767.
15 Hu P, Cheng Y, Guo X, et al. Journal of the American Ceramic Society, 2019, 102(1), 70.
16 Singh S, Singh V, Kumari S, et al. Journal of the European Ceramic Society, 2021, 41(1), 130.
17 Zivic F, Palic N, Jovanovic Z, et al. Reference Module in Materials Science and Materials Engineering, 2021, 2, 20.
18 Ibrahim J, Paolucci S. Carbon, 2011, 49(3), 915.
19 Wang T, Li H, Shen Q, et al. Composites Part B: Engineering, 2020, 192, 107982.
20 Zhang S, Ji G, Xia T, et al. Diamond and Related Materials, 2020, 105, 107759.
21 Deck C P, Khalifa H E, Sammuli B, et al. Science and Technology of Nuclear Installations, 2013, 2013, 1.
22 Pandey A, Selvam P, Dhindaw B K, et al. Materials Today: Procee-dings, 2020, 21, 1059.
23 Wang J, Chen X, Guan K, et al. Ceramics International, 2018, 44(14), 16414.
24 Pan Y, Wang J, Wang N, et al. Journal of the European Ceramic Society, 2019, 39(16), 5463.
25 Vignoles G L. Advances in composites manufacturing and process design. Elsevier, France 2015, pp. 415.
26 Wang J, Cao L, Liu Y, et al. Journal of the European Ceramic Society, 2020, 40(8), 2828.
27 Hu C, Pang S, Tang S, et al. Corrosion Science, 2014, 80, 154.
28 Kumar S, Bablu M, Ranjan A, et al. Ceramics International, 2017, 43(3), 3414.
29 Rebillat F. Reference Module in Materials Science and Materials Enginee-ring, 2021, 2, 317.
30 Colombo P, Mera G, Riedel R, et al. Journal of the American Ceramic Society, 2010, 93(7), 1805.
31 Terauds K, Raj R, Kroll P. Journal of the American Ceramic Society, 2014, 97(3), 742.
32 Xie C, Chen M, Wei X, et al. Journal of the American Ceramic Society, 2012, 95(3), 866.
33 Zhong H, Wang Z, Zhou H, et al. Ceramics International, 2017, 43(10), 7387.
34 Sreeja R, Swaminathan B, Painuly A, et al. Materials Science and Engineering: B, 2010, 168(1-3), 204.
35 Yang X, Feng C, Peng Z H, et al. Journal of Asian Ceramic Societies, 2018, 5(3), 370.
36 Zhang L, Wang W, Zhou N, et al. Journal of the European Ceramic So-ciety, 2022, 42(7), 3099.
37 Kumar S, M B, Mishra MK, et al. Ceramics International, 2017, 43(11), 8153.
38 Wang Y, Zhu X, Zhang L, et al. Ceramics International, 2012, 38(5), 4337.
39 Yang X, Su Z, Huang Q, et al. Journal of Materials Science and Techno-logy, 2013, 29(8), 702.
40 Wang D, Wang Y, Rao J, et al. Materials Science and Engineering: A, 2013, 568, 25.
41 Duan L, Zhao X, Wang Y. Ceramics International, 2017, 43(18), 16114.
42 Chen X, Feng Q, Gao L, et al. Journal of the American Ceramic Society, 2017, 100(10), 4816.
43 Kütemeyer M, Schomer L, Helmreich T, et al. Journal of the European Ceramic Society, 2016, 36(15), 3647.
44 Tang S, Hu C. Journal of Materials Science and Technology, 2017, 33(2), 117.
45 Liu Y, Fu Q, Zhang J, et al. Journal of the European Ceramic Society, 2016, 36(15), 3815.
46 Zhong Q, Zhang X, Dong S, et al. Ceramics International, 2017, 43(7), 5832.
47 Tong Y, Bai S, Liang X, et al. Ceramics International, 2016, 42(15), 17174.
48 Liu L, Zhang L, Feng W, et al. Ceramics International, 2020, 46(6), 8469.
49 Chen S, Hu H, Zhang Y, et al. Materials and Design, 2013, 51, 19.
21090178-950 Hu H, Wang Q, Chen Z, et al. Ceramics International, 2010, 36(3), 1011.
51 Zhang D, Hu P, Dong S, et al. Journal of Alloys and Compounds, 2019, 789, 755.
52 Hu P, Zhang D, Dong S, et al. Journal of the European Ceramic Society, 2019, 39(4), 798.
53 Zhang D, Hu P, Dong S, et al. Corrosion Science, 2019, 161, 108181.
54 Lu J, He Q, Wang Y, et al. Journal of Alloys and Compounds, 2016, 686, 823.
55 Mei M, He X B, Qu X H. In: 16th National Conference on Composite Materials. Changsha, 2010, pp. 499 (in Chinese).
梅敏, 何新波, 曲选辉. 第十六届全国复合材料学术会议. 长沙, 2010, pp. 499.
56 Mei M, He X, Qu X, et al. Materials Letters, 2012, 82, 36.
57 Li H, He Q, Wang C, et al. Vacuum, 2019, 164, 265.
58 He Q, Li H, Wang C, et al. Ceramics International, 2019, 45(10), 13283.
59 He Q, Lu J, Wang Y, et al. Ceramics International, 2016, 42(15), 17429.
60 Liang J, Xiao H, Gao P, et al. Ceramics International, 2017, 43(2), 1788.
61 Li Z, Xiao P, Xiong X, et al. Solid State Sciences, 2013, 16, 6.
62 Zhang D, Hu P, Feng J, et al. Ceramics International, 2019, 45(5), 5467.
63 Ferraiuolo M, Scigliano R, Riccio A, et al. Composite Structures, 2019, 207, 264.
64 Chen Y, Zhang L, Zhao Y, et al. Composite Structures, 2019, 214, 103.
65 Bouillon E, Laval N, Marsal D. In: Advanced Ceramic Matrix Composites: Science and Technology of Materials, Design, Applications, Performance and Integration Conference. Tokyo, 2017, pp.33.
66 Grady J E, Smith C E, Sullivan R M, et al. In: Advanced Ceramic Matrix Composites: Science and Technology of Materials, Design, Applications, Performanceand Integration Conference. Santa Fe (US), 2017, pp.15.
67 Le V T, Ha N S, Goo N S. Composites Part B: Engineering, 2021, 226, 109301.
68 An Q, Chen J, Ming W, et al. Chinese Journal of Aeronautics, 2021, 34(4), 540.
69 Dai J X. Effect of thermal treatment of carbon fiber on microstructure and properties of C-SiC-based composites. Ph.D. Thesis, Dalian University of Technology, China, 2015 (in Chinese).
代吉祥. 碳纤维热处理对C-SiC基复合材料微观组织结构及性能影响的研究. 博士学位论文, 大连理工大学, 2015.
70 Yan L S, Cui W J, Cui H, et al. Aerospace Materials & Technology, 2014, 44(3), 6 (in Chinese).
闫联生, 崔万继, 崔红,等. 宇航材料工艺, 2014, 44(3), 6.
71 Liu C, Qiu J, Chen M. Journal of Rocket Propulsion, 2019, 45(4), 1 (in Chinese).
刘昌国, 邱金莲, 陈明亮. 火箭推进, 2019, 45(4), 1.
72 Fan S, Sun H, Ma X, et al. Journal of Alloys and Compounds, 2018, 769, 239.
73 Li Z, Xiao P, Zhang B G, et al. Ceramics International, 2015, 41(9), 11733.
74 Xu X Y, Zhang L T, Cheng L F, et al. Aeronautical Manufacturing Technology, 2014, 450(6), 100 (in Chinese).
徐兴亚, 张立同, 成来飞,等. 航空制造技术, 2014, 450(6), 100.
75 Shi Q L. Microstructure and tribological behavior of C/C-SiC braking composites fabricated by chemical vapor infiltration process. Ph.D. Thesis, Central South University, China, 2012 (in Chinese).
时启龙. 化学气相渗透制备C/C-SiC摩擦材料的微观结构及摩擦行为研究. 博士学位论文, 中南大学, 2012.
76 El-Hija HA, Krenkel W, Hugel S. International Journal of Applied Ceramic Technology, 2010, 2(2), 105.
77 Duan J, Zhang M, Chen P, et al. Ceramics International, 2021, 47(14), 19271.
78 Zhang K D, Cao Y B, Liu R J, et al. Materials Reports, 2012, 26(13), 7 (in Chinese).
张德坷, 曹英斌, 刘荣军,等. 材料导报, 2012, 26(13), 7.
79 Zhu X J, Xia Y W. Aerospace Materials & Technology, 2013, 43(4), 20 (in Chinese).
朱晓娟, 夏英伟. 宇航材料工艺, 2013, 43(4), 20.
80 Liu T, Zhou Y M, Jiang Y S. Spacecraft Recovery & Remote Sensing, 2013, 34(5), 90 (in Chinese).
刘韬, 周一鸣, 江月松.航天返回与遥感, 2013, 34(5), 90.
81 Huang L M, Zhang C R, Liu R J, et al. Aerospace Materials & Technology, 2016, 46(6), 26 (in Chinese).
黄禄明, 张长瑞, 刘荣军, 等. 宇航材料工艺, 2016, 46(6), 26.
82 Wang J. Preparation and properties of near-zero expansion C/C-SiC composites by reactive bonding technique. Master's Thesis, National University of Defense Technology, China, 2013 (in Chinese).
王静. 近零膨胀C/C-SiC复合材料的反应烧结法制备及性能研究.硕士学位论文, 国防科学技术大学, 2013.
[1] 贾峰峰, 俄松峰, 陈珊珊, 宁逗逗, 黄吉振, 陆赵情. 碳纤维湿法造纸工艺及碳纤维纸基功能材料的研究进展[J]. 材料导报, 2023, 37(8): 21070135-9.
[2] 薛云嘉, 刘家臣. 柔性纤维毡的制备及弹性与隔热性能研究[J]. 材料导报, 2023, 37(3): 21030042-6.
[3] 夏伟, 陆松, 白二雷, 许金余, 杜宇航, 姚廒. 碳纳米管-碳纤维复合改性混凝土力学性能研究[J]. 材料导报, 2023, 37(16): 22010125-9.
[4] 方思怡, 巴明芳, 许浩锋, 张晨剑, 谢嘉磊, 王志豪. HEC分散剂和纤维掺量对短切碳纤维水泥基材料压敏性的影响[J]. 材料导报, 2023, 37(15): 22020152-9.
[5] 蔡兴瑞, 万逸飞, 李翰超, 宋嘉玲, 冯志强, 曾庆丰, 关康, 刘建涛. 连续碳化硅纤维增韧陶瓷基复合材料微结构数字化建模和宏观各向异性模量预测[J]. 材料导报, 2023, 37(13): 21050041-7.
[6] 苏宇, 翁凌, 王小明, 关丽珠, 张笑瑞. 核壳结构SiCNWs@SiO2/PVDF复合材料的制备与介电储能特性[J]. 材料导报, 2023, 37(11): 22010127-11.
[7] 朱万利, 包建勋, 张舸, 崔聪聪. 金刚石/碳化硅复合材料的研究进展[J]. 材料导报, 2023, 37(10): 22100263-8.
[8] 张雷, 李姗姗, 庄毅, 唐毓婧, 罗欣. 碳纤维与玻-碳层间混杂2.5维机织复合材料的力学性能对比研究[J]. 材料导报, 2022, 36(Z1): 21100025-5.
[9] 马帅, 金珊珊. 碳纤维增强复合材料对钢筋混凝土的加固作用[J]. 材料导报, 2022, 36(Z1): 22030217-5.
[10] 肖美霞, 冷浩, 姚婷珍, 王磊, 何成. 电场调控范德华异质薄膜能隙的第一性原理研究:单层SiC沉积在表面氢化的BN薄膜上[J]. 材料导报, 2022, 36(8): 20080062-6.
[11] 蔡雨晨, 冯可芹, 周博芳, 陈思潭. Nb对Zr基钎料及钎焊连接SiC陶瓷的影响[J]. 材料导报, 2022, 36(3): 20090283-5.
[12] 李阳, 蔡长春, 余欢, 徐志锋, 王振军, 张永刚, 钱鑫, 钟俊俊. 国产M50J级碳纤维/铝基复合材料的微观特征及拉伸性能研究[J]. 材料导报, 2022, 36(21): 21030323-6.
[13] 孙红刚, 司瑶晨, 夏淼, 李红霞, 赵世贤, 杜一昊, 尚心莲. 碳化硅-六铝酸钙复合材料的抗渣机制:煤气化用无铬耐火材料新探索[J]. 材料导报, 2022, 36(20): 21040081-6.
[14] 田继挺, 冯琦杰, 郑健, 周韦, 李欣, 梁晓波, 刘德峰. 单晶立方碳化硅辐照肿胀与非晶化的分子动力学模拟研究[J]. 材料导报, 2022, 36(2): 20100248-5.
[15] 卫新宇, 张文瑾, 陈龙威, 刘成周, 林启富, 江贻满, 王晓洁. 碳纤维石墨化技术综述[J]. 材料导报, 2022, 36(17): 20120255-8.
[1] Wei ZHOU, Xixi WANG, Yinlong ZHU, Jie DAI, Yanping ZHU, Zongping SHAO. A Complete Review of Cobalt-based Electrocatalysts Applying to Metal-Air Batteries and Intermediate-Low Temperature Solid Oxide Fuel Cells[J]. Materials Reports, 2018, 32(3): 337 -356 .
[2] Dongyong SI, Guangxu HUANG, Chuanxiang ZHANG, Baolin XING, Zehua CHEN, Liwei CHEN, Haoran ZHANG. Preparation and Electrochemical Performance of Humic Acid-based Graphitized Materials[J]. Materials Reports, 2018, 32(3): 368 -372 .
[3] Yunzi LIU,Wei ZHANG,Zhanyong SONG. Technological Advances in Preparation and Posterior Treatment of Metal Nanoparticles-based Conductive Inks[J]. Materials Reports, 2018, 32(3): 391 -397 .
[4] Bingwei LUO,Dabo LIU,Fei LUO,Ye TIAN,Dongsheng CHEN,Haitao ZHOU. Research on the Two Typical Infrared Detection Materials Serving at Low Temperatures: a Review[J]. Materials Reports, 2018, 32(3): 398 -404 .
[5] Yingke WU,Jianzhong MA,Yan BAO. Advances in Interfacial Interaction Within Polymer Matrix Nanocomposites[J]. Materials Reports, 2018, 32(3): 434 -442 .
[6] Zhengrong FU,Xiuchang WANG,Qinglin JIN,Jun TAN. A Review of the Preparation Techniques for Porous Amorphous Alloys and Their Composites[J]. Materials Reports, 2018, 32(3): 473 -482 .
[7] Fangyuan DONG,Shansuo ZHENG,Mingchen SONG,Yixin ZHANG,Jie ZHENG,Qing QIN. Research Progress of High Performance ConcreteⅡ: Durability and Life Prediction Model[J]. Materials Reports, 2018, 32(3): 496 -502 .
[8] Lixiong GAO,Ruqian DING,Yan YAO,Hui RONG,Hailiang WANG,Lei ZHANG. Microbial-induced Corrosion of Concrete: Mechanism, Influencing Factors,Evaluation Indices, and Proventive Techniques[J]. Materials Reports, 2018, 32(3): 503 -509 .
[9] Ningning HE,Chenxi HOU,Xiaoyan SHU,Dengsheng MA,Xirui LU. Application of SHS Technique for the High-level Radioactive Waste Disposal[J]. Materials Reports, 2018, 32(3): 510 -514 .
[10] Haoran CHEN, Yingdong XIA, Yonghua CHEN, Wei HUANG. Low-dimensional Perovskites: a Novel Candidate Light-harvesting Material for Solar Cells that Combines High Efficiency and Stability[J]. Materials Reports, 2018, 32(1): 1 -11 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed