Journal of Inorganic Materials ›› 2022, Vol. 37 ›› Issue (1): 86-92.DOI: 10.15541/jim20210182
Special Issue: 【结构材料】超高温结构陶瓷(202409); 【结构材料】陶瓷基复合材料(202409); 2022年度中国知网高下载论文
• RESEARCH ARTICLE • Previous Articles Next Articles
JU Yinchao1,2(), LIU Xiaoyong2, WANG Qin2, ZHANG Weigang3, WEI Xi2(
)
Received:
2021-03-23
Revised:
2021-05-21
Published:
2022-01-20
Online:
2021-06-01
Contact:
WEI Xi, senior engineer. E-mail: weixi31s@163.com
About author:
JU Yinchao (1985-), male, PhD candidate. E-mail: by1704142@buaa.edu.cn
CLC Number:
JU Yinchao, LIU Xiaoyong, WANG Qin, ZHANG Weigang, WEI Xi. Ablation Behavior of Ultra-high Temperature Composite Ceramic Matrix Composites[J]. Journal of Inorganic Materials, 2022, 37(1): 86-92.
Number | Sample | Density /(g·cm-3) | Porsity /% | Experimental equipment | Ablation temperature/K | Linear ablation rate/(μm·s-1) |
---|---|---|---|---|---|---|
1 | C/SiC | 2.1 | 3.8 | atmospheric plasma torch | 2450 K | 15.97 |
2 | ZrC-SiC matrix composites | 2.2 | 16.3 | atmospheric plasma torch | 2450 K | 0.59 |
3 | ZrB2-ZrC-SiC matrix composites | 2.1 | 15.4 | atmospheric plasma torch | 2450 K | 1.32 |
4 | ZrC-SiC matrix composites | 2.2 | 16.3 | art-jet wind tunnel testing | 2200 K | 9.8 |
5 | ZrB2-ZrC-SiC matrix composites | 2.1 | 15.4 | art-jet wind tunnel testing | 2200 K | 0.33 |
6 | ZrB2-ZrC-SiC matrix composites | 2.1 | 15.4 | art-jet wind tunnel testing | 2300 K | 5.3 |
7 | HfB2-HfC-SiC matrix composites | 2.5 | 15.6 | art-jet wind tunnel testing | 2300 K | 0.17 |
Table 1 Effect of porosity on ablation performance of different composites
Number | Sample | Density /(g·cm-3) | Porsity /% | Experimental equipment | Ablation temperature/K | Linear ablation rate/(μm·s-1) |
---|---|---|---|---|---|---|
1 | C/SiC | 2.1 | 3.8 | atmospheric plasma torch | 2450 K | 15.97 |
2 | ZrC-SiC matrix composites | 2.2 | 16.3 | atmospheric plasma torch | 2450 K | 0.59 |
3 | ZrB2-ZrC-SiC matrix composites | 2.1 | 15.4 | atmospheric plasma torch | 2450 K | 1.32 |
4 | ZrC-SiC matrix composites | 2.2 | 16.3 | art-jet wind tunnel testing | 2200 K | 9.8 |
5 | ZrB2-ZrC-SiC matrix composites | 2.1 | 15.4 | art-jet wind tunnel testing | 2200 K | 0.33 |
6 | ZrB2-ZrC-SiC matrix composites | 2.1 | 15.4 | art-jet wind tunnel testing | 2300 K | 5.3 |
7 | HfB2-HfC-SiC matrix composites | 2.5 | 15.6 | art-jet wind tunnel testing | 2300 K | 0.17 |
[1] | NASLAIN R. Design, preparation and properties of non-oxide CMCs for application in engines and nuclear reactors: an overview. Comp. Sci. & Tech., 2004, 64(2):155-170. |
[2] | 张立同, 成来飞, 徐永东. 新型碳化硅陶瓷基复合材料的研究进展. 航空制造工艺, 2003, 1:24-32. |
[3] | 张立同, 成来飞. 连续纤维增韧陶瓷基复合材料可持续发展战略探讨. 复合材料学报, 2007, 2(24):1-6. |
[4] | 段刘阳, 罗磊, 王一光. 超高温陶瓷基复合材料的改性和烧蚀行为. 中国材料进展, 2015, 34(10):762-769. |
[5] | 董绍明, 周海军, 胡建宝, 等. 浅析极端环境下服役陶瓷基复合材料的构建. 中国材料进展, 2015, 3(10):742-750. |
[6] | OPEKA M, TALMY I, ZAYKOSKI J. Oxidation-based materials selection for 2000 ℃ plus hypersonic aerosurfaces: theoretical considerations and historical experience. J. Mater. Sci., 2004, 39(19):5887-5904. |
[7] | 张幸红, 胡平, 韩杰才, 等. 超高温陶瓷复合材料的研究进展. 科学通报, 2015, 3(60):257-266. |
[8] | 张国军, 刘海涛, 邹冀, 等. 硼化锆陶瓷生命周期中的化学反应. 科学通报, 2015, 60(3):276-286. |
[9] |
LESPADE P, RICHET N, GOURSAT P. Oxidation resistance of HfB2-SiC composites for protection of carbon-based materials. Acta Astronautica, 2007, 60(10/11):858-864.
DOI URL |
[10] | MONTEVERDE F, BELLOSI A. Oxidation of ZrB2-Based ceramics in dry air. J. Electrochem. Soc., 2003, 150(11):B552-B559. |
[11] | OPILA E, HALBIG M. Oxidation of ZrB2-SiC. Ceram. Eng. Sci. Proc., 2001, 22(3):221-228. |
[12] | TANG S F, DENG J Y, WANGSHIJUN, et al. Ablation behaviors of ultra-high temperature ceramic composites. Mater. Sci. & Eng. A, 2007, 465(1/2):1-7. |
[13] | WANG Y G, LIU W, CHENG L F, et al. Preparation and properties of 2D C/ZrB2-SiC ultra high temperature ceramic composites. Mater. Sci. & Eng. A, 2009, 524:129-133. |
[14] | 童长青, 成来飞, 刘永胜, 等. 2D C/SiC-ZrB2复合材料的烧蚀性能. 航空材料学报, 2012, 32(2):69-74. |
[15] | FENG Q, WANG Z, ZHOU H J, et al. Microstructure analysis of Cf/SiC-ZrC composites in both fabrication and plasma wind tunnel testing processes. Ceram. Int., 2014, 40(1):1199-1204. |
[16] | WANG Y, XU Y D, WANG Y G, et al. Effects of TaC addition on the ablation resistance of C/SiC. Mater. Lett., 2010, 64:2068-2071. |
[17] |
PATTERSON M, HE S, FEHRENBACHER L, et al. Advanced HfC-TaC oxidation resistant composite rocket thruster. Mater. Manuf. Proc., 1996, 11:367-379.
DOI URL |
[18] | SAYIR A. Carbon fiber reinforced hafnium carbide composites. J. Mater Sci., 2004, 39:5995-6003. |
[19] | ZHANG W G, XIE CH M, WEI X, et al. MAX Phase and Ultra-high Temperature Ceramics for Extreme Environments (Chapter 14 C/C ZrB2-ZrC-SiC Composites Derived from Polymeric Precursor Infiltration and Pyrolysis Part 2: Mechanical and Ablation Properties.) IGI Global, 2013: 435-460. |
[20] | ZHANG W G, XIE CH M, GE M, et al. MAX Phase and Ultra-high Temperature Ceramics for Extreme Environments (Chapter 13 C/C ZrB2-ZrC-SiC Composites Derived from Polymeric Precursor Infiltration and Pyrolysis Part 1: Preparation and microstructures.), IGI Global, 2013: 413-434. |
[21] | WEI X, ZHANG W G, GE M. Polymer-derived ZrC-SiC Composite Ceramic Powders. 39th International Conference on Advanced Ceramics and Composites, Daytona beach, USA, 2015. 01. 25-30. |
[22] | WANG Y G, ZHU X J, ZHANG L T, et al. C/C-SiC-ZrC composites fabrication reactive melt infiltration with Si0.87Zr0.13 alloy. Ceram. Int., 2012, 38(5):4337-4343. |
[23] | WANG J, HU H F, ZHANG Y D, et al. Preparation and characterization of C/SiC-ZrB2 composites by precursor infiltration and pyrolysis. Ceram. Int., 2010, 36(3):1011-1016. |
[24] | LI Q G, DONG S M, WANG Z, et al. Fabrication and properties of 3D Cf/ZrC-SiC composites using ZrC precursor and polycarbosilane. J. Am. Ceram. Soc., 2012, 38(7):6041-6045. |
[25] | YAN CH L, LIUN R J, CAO Y B, et al. Preparation and properties of 3D needle-punched C/ZrC-SiC composites by polymer infiltration and pyrolysis process. Ceram. Int., 2014, (40):10961-10970. |
[26] | 武海棠. 易加工超高温陶瓷复合材料的制备与性能研究. 北京:中国科学院过程工程研究所博士学位论文, 2011. |
[27] | 谢昌明. 整体抗氧化超高温复合材料研究. 北京: 中国科学院过程工程研究所硕士学位论文, 2012. |
[28] | 张伟刚, 戈敏, 魏玺. 一种碳化锆和二硼化锆陶瓷有机前驱体材料及其制备方法. 国防发明专利: 201110010110.2. |
[29] | 张伟刚, 戈敏, 魏玺. 一种碳化铪和二硼化铪陶瓷有机前驱体材料及其制备方法. 国防发明专利: 201218002692.5. |
[30] |
HU P, WANG G, WANG Z. Oxidation mechanism and resistance of ZrB2-SiC composites. Corrosion Sci., 2009, 51:2724-2732.
DOI URL |
[31] |
WU H T, WEI X, YU SH Q, et al. Ablation performances of multi-phased C/C-ZrC-SiC ultra-high temperature composites. Journal of Inorganic Materials, 2011, 26(8):852-856.
DOI URL |
[32] | 魏玺, 李捷文, 张伟刚. HfB2-HfC-SiC改性C/C复合材料的超高温烧蚀性能研究. 装备环境工程, 2016, 13(3):12-17. |
[33] | BIRD B, STEWART W, LIGHTFOOT E. Transport Phenomena. New York: John Wiley & Sons, 1960. |
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