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2019, 03, v.50 33-39
碳化硼陶瓷的制备工艺及其应用现状
基金项目(Foundation): 国家重点专项(2017YFB0310302):高品质SiC的冶炼、高效细化新技术及亚微米粉体的规模化生产
邮箱(Email):
DOI: 10.16122/j.cnki.issn1001-1943.2019.03.008
发布时间: 2019-06-24
出版时间: 2019-06-24
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摘要:

碳化硼是一种战略材料,因具有高熔点、高硬度、低密度、良好的热稳定性、较强的抗化学侵蚀能力和中子吸收能力等一系列优良性能,已被广泛应用于能源和军事领域。文章综述了碳化硼陶瓷材料在防弹领域的制备工艺及其应用现状。综合分析比较了各种制备技术的研究进展,并对碳化硼防弹陶瓷材料的发展进行了总结与展望。

Abstract:

Boron carbide is a strategic material. Due to the high melting point, outstanding hardness, low density, good thermal stability, strong resistance to chemical erosion, good neutron absorption capacity and a series of excellent properties, it is widely used in the field of energy and military. In this paper, the application and sintering technology of boron carbide ceramic materials in bulletproof field are reviewed. The research progress of various sintering techniques is also analyzed and compared. The development of boron carbide bulletproof ceramic materials is summarized and prospected.

参考文献

[1] Thevenot F.A Review on Boron Carbide[J].Key Engineering Materials,1991,56-57:59-88.

[2] Ridway R.A new crystalline abrasive and wear-resisting product[J].Trans Am Eleetroehem Soc,1934,6(3):117.

[3] Lipp A.Boron carbide production properties application[J].Techno Run,1996,9(7):47.

[4] Beauvy M.Stoichiometric limits of carbon-rich boron carbide phases[J].Journal of the Less Common Metals,1983,90(2):169-175.

[5] Vast N,Lazzari R,Besson J M,et al.Atomic structure and vibrational properties of icosahedralα-boron and B4C boron carbide[J].Computational Materials Science,2000,17(2-4):127-132.

[6] M.V.斯温.陶瓷的结构与性能[M].北京:科学出版社,1998.

[7] 李世普.特种陶瓷工艺学[M].武汉:武汉工业大学出版社,1991.

[8] 杨亮亮,谢志鹏,刘维良,等.碳化硼陶瓷的烧结与应用新进展[J].陶瓷学报,2015,36(1):1-8.

[9] Levin L,Frage N,Dariel M P.A novel approach for the preparation of B4C-based cermets[J].International Journal of Refractory Metals & Hard Materials,2000,18(2):131-135.

[10] Dole S L,Prochazka S,Doremus R H.Microstructural Coarsening During Sintering of Boron Carbide[J].Journal of the American Ceramic Society,2010,72(6):958-966.

[11] Lee H,Speyer R F.Pressureless Sintering of Boron Carbide[J].Journal of the American Ceramic Society,2010,86(9):1468-1473.

[12] Frage N,Levin L,Dariel M P.The effect of the sintering atmosphere on the densification of B4C ceramics[J].Journal of Solid State Chemistry,2004,177(2):410-414.

[13] Speyer R F,Lee H.Improved Pressureless Densification of B4C[J].Ceramic Transactions,2003,151:71-82.

[14] 尹邦跃,王零森.热压烧结B4C陶瓷的物理性能研究[J].原子能科学技术,2004,38(5):429-431.

[15] Yin B Y,Wang L S.Study on Physical Properties of Hot-pressing Sintered B4C Ceramic[J].Atomic Energy Science and Technology,2004,38(5):429-431.

[16] 丁硕,温广武,雷廷权.碳化硼材料研究进展[J].材料科学与工艺,2003,11(1):101-105.

[17] 裴立宅.碳化硼材料的制备技术[J].佛山陶瓷,2007(4):37-41.

[18] Thévenot F.Boron carbide—A comprehensive review[J].Journal of the European Ceramic Society,1990,6(4):205-225.

[19] Thévenot F.Sintering of boron carbide and boron carbide-silicon carbide two-phase materials and their properties[J].Journal of Nuclear Materials,1988,152(2-3):154-162.

[20] M.S.Koval'chenko,Yu.G.Tkachenko,L.F.Ochkas,et al.Densification kinetics of boron carbide in hot pressing[J].Soviet Powder Metallurgy and Metal Ceramics,1987,26(11):881-884.

[21] I.T.Ostapenko,V.V.Slezov,R.V.Tarasov,et al.Densification of boron carbide powder during hot pressing[J].Soviet Powder Metallurgy and Metal Ceramics,1979,18(5):312-316.

[22] 祝宝军,肖汉宁,陶颖,等.碳化硼陶瓷活化烧结技术进展[J].硬质合金,2004(2):116-120.

[23] 裴立宅,刘翠娟,肖汉宁,等.反应烧结碳化硼的研究进展[J].硬质合金,2004(1):61-64.

[24] Telle R,Petzow G.Strengthening and toughening of boride and carbide hard material composites[J].Materials Science & Engineering A,1988,105(96):97-104.

[25] Sivaprahasam D,Chandrasekar S B,Sundaresan R.Microstructure and mechanical properties of nanocrystalline WC-12Co consolidated by spark plasma sintering[J].International Journal of Refractory Metals and Hard Materials,2007,25(2):144-152.

[26] 吴清英,刘向兵,褚克,等.SPS法制备铜-2%碳纳米管复合材料[J].粉末冶金技术,2010,28(3):210-214.

[27] 宋晓艳,刘雪梅,张久兴.SPS过程中导电粉体的显微组织演变规律及机理[J].中国科学:技术科学,2005,35(5):459-469.

[28] Groza J R,Risbud S H,Yamazaki K.Plasma activated sintering of additive-free AlN powders to near-theoretical density in 5 minutes[J].Journal of Materials Research,2011,7(10):2643-2645.

[29] 席晓丽,郭艳群,聂祚仁,等.在SPS过程中碳污染的研究[J].北京工业大学学报,2004(1):59-62.

[30] Chu K,Jia C,Liang X,et al.Effect of particle size on the microstructure and thermal conductivity of Al/diamond composites prepared by spark plasma sintering[J].稀有金属(英文版),2009,28(6):646.

[31] 孙志杰,吴燕,张佐光,等.防弹陶瓷的研究现状与发展趋势[J].宇航材料工艺,2000(5):10-14,23.

[32] 王峰,李惠琪,李敏,等.氧化铝陶瓷制备技术研究[J].材料导报,2008,22(S3):332-335.

[33] 黄智恒,贾德昌,杨治华,等.碳化硅陶瓷的活化烧结与烧结助剂[J].材料科学与工艺,2004(1):103-107.

[34] Prochazka S,Scanlan R M.Effect of Boron and Carbon on Sintering of SiC[J].Journal of the American Ceramic Society,2010,58(1-2):72-72.

[35] 孙致平,滕元成,齐晓敏,等.高纯超细氧化铝粉的常压烧结与高压烧结[J].化工学报,2007(11):2932-2936.

[36] 江洁,董侠,陈美玉,等.现代防弹材料[J].材料导报,2013,27(11):70-76,82.

[37] 刘延华.警用防弹衣质量现状及发展对策[J].警察技术,2006(5):53-55.

[38] 陶然.各国警用防弹衣的质量和应用研究[J].中国个体防护装备,2009(6):11-14.

[39] 包锐.人体的保护神——“护神”牌防弹防刺装备[J].轻兵器,1999(2).

[40] 宋继鑫.陶瓷装甲的新发展[J].兵器知识,2004(7):43-45.

[41] 曹贺全,张广明,孙素杰,等.装甲车辆防护技术研究现状与发展[J].兵工学报,2012,33(12):1549-1554.

[42] Medvedovski E.Alumina ceramics for ballistic protection,Part 1[J].American Ceramic Society Bulletin,2002,81(3):27-32.

[43] 胡丽萍,王智慧,侯圣英,等.大倾角陶瓷复合装甲抗弹性能研究[J].兵工自动化,2010,29(2):12-13.

[44] Li-Ping H U,Wang Z H,Hou S Y,et al.Study on Anti-Bomb Performance of Large Inclination Ceramics Composite Armor[J].Ordnance Industry Automation,2010.

[45] STRASSBURGER,LEXOW.Ceramic armor with submicron alumina against armor piercing projectiles[J].Ceramic Transactions,2002.

[46] 董宇.新型陶瓷复合装甲板的设计与制备研究[D].沈阳:东北大学,2008.

[47] 韩辉,李军,焦丽娟,等.陶瓷-金属复合材料在防弹领域的应用研究[J].材料导报,2007(2):34-37.

[48] 唐国宏.碳化硼基多相超硬材料系统研究[D].北京:北京航空航天大学,1993.

[49] 吴燕平,燕青芝.防弹装甲中的陶瓷材料[J].兵器材料科学与工程,2017(4):135-140.

[50] 李修梅.TiB2/B4C-Al/B4C双层复合新型防弹材料的制备、组织与力学性能[D].沈阳:东北大学,2010.

[51] 魏汝斌,李锋,梁勇芳,等.碳化硅抗弹陶瓷的研究进展及在装甲防护领域的应用[J].兵器材料科学与工程,2014,37(6):145-148.

[52] 薛书凯,陈建梅,成敏苏.装甲车用新型高性能防弹复合材料技术研究[J].玻璃钢/复合材料,2012(4):80-83.

基本信息:

DOI:10.16122/j.cnki.issn1001-1943.2019.03.008

中图分类号:TQ174.1

引用信息:

[1]聂丹,王帅,邢鹏飞,等.碳化硼陶瓷的制备工艺及其应用现状[J].铁合金,2019,50(03):33-39.DOI:10.16122/j.cnki.issn1001-1943.2019.03.008.

基金信息:

国家重点专项(2017YFB0310302):高品质SiC的冶炼、高效细化新技术及亚微米粉体的规模化生产

发布时间:

2019-06-24

出版时间:

2019-06-24

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