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材料导报  2022, Vol. 36 Issue (21): 20090229-7    https://doi.org/10.11896/cldb.20090229
  无机非金属及其复合材料 |
高强高韧玻璃的研究进展
王衍行1,*, 李现梓1, 韩韬1, 肖雷2, 何坤1, 祖成奎1
1 中国建筑材料科学研究总院有限公司,北京 100024
2 中国船舶工业系统工程研究院,北京 100036
Research Progress on High Strength and High Toughness Glasses
WANG Yanhang1,*, LI Xianzi1, HAN Tao1, XIAO Lei2, HE Kun1, ZU Chengkui1
1 Building Material Industrial Key Laboratory for Special Glass Preparation and Processing, China Building Materials Academy, Beijing 100024, China
2 China Shipbuilding Industry System Engineering Research Institute, Beijing 100036, China
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摘要 因固有的脆性特性导致的低服役安全性是制约玻璃作为透明窗口应用的瓶颈。为满足航空透明件、特种车辆视窗、高铁风挡以及压力容器观察窗等的高强高韧应用需求,提高玻璃的力学性能至关重要。高强高韧玻璃的研究主要涉及:(1)开发具有特定成分和微观结构的高性能玻璃基质,如钠钙硅玻璃、无碱铝硅玻璃、高碱高铝玻璃和透明微晶玻璃等;(2)尝试和优化各种增强增韧技术,如酸处理、钢化、微晶化、引入夹层、引入增强体等。本文基于以上两个方面综述了高强高韧玻璃的国内外研究进展。
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王衍行
李现梓
韩韬
肖雷
何坤
祖成奎
关键词:  玻璃  力学性能  抗弯强度  断裂韧性  透明件    
Abstract: The low service safety induced by the material's intrinsic brittleness is the major obstacle challenging the advanced engineering uses of glasses. In order to meet the requirements of high strength and high toughness for transparent parts of aircrafts, windows of special vehicles, windshields of high-speed trains and windows of pressure vessels, it is necessary to improve the mechanical properties of glasses. The research of high strength and high toughness (HSHT) glasses mainly entails: (i) the development of glass substances with certain chemical compositions and microstructures, such as sodium calcium silicate glasses, alkali-free aluminosilicate glasses, high-alkali and high-alumina glasses, and transparent glass-ceramics; (ii) the adoption and optimization of various strengthening and toughening methods, including acid treatment, tempering, surface ion exchange, ceramization, and the introduction of interlayers or nano-enhancements. The present paper attempts to provide beneficial summary of the worldwide research progress of HSHT glasses from the two above-mentioned perspectives.
Key words:  glass    mechanical property    bending strength    fracture toughness    transparent part
出版日期:  2022-11-10      发布日期:  2022-11-03
ZTFLH:  TQ171  
基金资助: 科技创新特区项目(19-163-00-KX-002-003-01)
通讯作者:  * drwangyh@126.com   
作者简介:  王衍行,建材行业特种玻璃制备与加工重点实验室(中国建筑材料科学研究总院有限公司)教授级高工、博士研究生导师。1999年毕业于山东轻工业学院(现齐鲁工业大学),获得硅酸盐工程学士学位;2003年毕业于北京工业大学,获得材料学硕士学位;2009年毕业于北京科技大学,获得材料学博士学位。现为从事特种玻璃制备与性能表征方面的研究工作,近年作为项目负责人主持国家级科研项目10项。发表学术论文58篇,其中SCI/EI收录39篇;授权发明专利32件;获得中国硅酸盐学会建筑材料技术发明一等奖1项。
引用本文:    
王衍行, 李现梓, 韩韬, 肖雷, 何坤, 祖成奎. 高强高韧玻璃的研究进展[J]. 材料导报, 2022, 36(21): 20090229-7.
WANG Yanhang, LI Xianzi, HAN Tao, XIAO Lei, HE Kun, ZU Chengkui. Research Progress on High Strength and High Toughness Glasses. Materials Reports, 2022, 36(21): 20090229-7.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.20090229  或          http://www.mater-rep.com/CN/Y2022/V36/I21/20090229
1 Sheikh M Z, Atif M, Raza M A, et al. Journal of Non-Crystalline Solids, 2020, 547, 120313.
2 Taynara G S, LagoKamal A R, IsmailFatima A M. Energy and Buildings, 2020, 218, 110050.
3 Alqahtani A, Abdul Sani S F, Amiera Narissa N H, et al. Applied Radiation and Isotopes, 2020, 160, 109132.
4 Kato Y, Yamazaki H, Yoshida S, et al. Journal of Non-Crystalline Solids, 2010, 356, 1768.
5 Benitez T, Gomez S Y, Oliveira A P N, et al. Ceramics International, 2017, 43, 13031.
6 Macedo G N B M, Sawamura S, Wondraczek L. Journal of Non-Crystalline Solids, 2018, 492, 94.
7 He Y Q, Yang J C. Journal of Building Materials, 2003, 6(4), 445(in Chinese).
贺蕴秋, 杨俊超. 建筑材料学报, 2003, 6(4), 445.
8 Gross T M, Tomozawa M, Koike A A. Journal of Non-Crystalline Solids, 2009, 355(9), 563.
9 Soraru G, Maschio R D. Material Science and Engineering, 1987, (85), 25.
10 Krohn M H, Hellmann J R, Shelleman D L, et al. Journal of the American Ceramic Society, 2002, 85(7), 1777.
11 Feng J, Wu X F, Zhou Y H, et al. New Building Materials, 2015(6), 60(in Chinese).
凤杰, 吴小飞, 周钰辉, 等. 新型建筑材料, 2015(6), 60.
12 Yan Y, Li L. New progress on the application study of transparent materials for aviation cockpit, National Defense Industry Press,China, 2011(in Chinese).
颜悦, 厉蕾. 航空座舱透明材料应用研究新进展,国防工业出版社, 2011.
13 Yang Z, Zhao X, Wu X, et al. Procedia Engineering, 2011, 11, 603.
14 Makishima A, Shimohira T. Journal of Non-Crystalline Solids, 1980, 38-39, 661.
15 Gao X L, Zhang Q, Yu J B, et al. Journal of Non-Crystalline Solids, 2018, 481(1), 98.
16 Hou Y S, Yuan J, Kang J F, et al. Journal of Wuhan University of Technology (Materials Science Edition), 2017, 32(1), 58.
17 Zhang L L, Qu Y, Wan X G, et al. Journal of Non-Crystalline Solids, 2020, 532, 119886.
18 Silich L M, Bobkova N M. Journal of Molecular Structure, 1986, 143, 243.
19 Gustavo A, Rosales S, Atsunobu M, et al. Scientific Reports, 2016, 6, 23620.
20 Wang P Z, Wu Y, Ding X Y, et al. Bulletin of the Chinese Ceramic Society, 2016, 35(5), 1622(in Chinese).
王沛钊, 吴亚, 丁小叶, 等. 硅酸盐通报, 2016, 35(5), 1622.
21 Morozumi H, Satoshi Y, Matsuoka J. Journal of the Ceramic Society of Japan, 2020, 128(1), 24.
22 Tian Y L, Li J J, Yang B Y, et al. Journal of Yanshan University, 2017, 41(4), 283(in Chinese).
田英良, 李俊杰, 杨宝瑛, 等. 燕山大学学报, 2017, 41(4), 283.
23 Varshneya A K. Journal of Non-Crystalline Solids, 2010, 356(44-49), 2289.
24 Gy R. Materials Science and Engineering: B, 2008, 149(2), 159.
25 Tick P A, Borrelli N F, Reaney I M. Optical Materials, 2000, 15(1), 81.
26 Riello P, Canton P, Comelato N, et al. Journal of Non-Crystalline Solids, 2001, 288(1), 127.
27 Mukherjee D P,Das S K. Ceramics International, 2013, 39( 1), 571.
28 Liu X F, Zhou J J, Zhou S F, et al. Progress in Materials Science, 2018, 97, 38.
29 Łaczka K, Cholewa-Kowalska K, Sroda M, et al. Journal of Non-Crystalline Solids, 2015, 428, 90.
30 Han L, Song J, Lin C W, et al. Journal of the European Ceramic Society, 2018, 481, 123.
31 Hao X J, Hu X L, Luo Z W, et al. Ceramics International, 2015, 41(10), 14130.
32 Tang W F, Zhang Q, Luo Z W, et al. Applied Physics A-Materials Science & Processing, 2018, 124(2), 191.
33 Tang L Y, Wang J, Cheng J S, et al. Journal of the Chinese Ceramic Society, 2011, 39(1), 147.
34 Guo X Z, Cai X B, Song J, et al. Journal of Non-Crystalline Solids, 2014, 405, 63.
35 Gallo L S, Boas M O, Rodrigues A C, et al. Journal of Materials Research and Technology, 2019, 8(3), 3357.
36 Ke X F, Shan Z T, Li Z H, et al. Journal of the American Ceramic Society, 2020, 103(6), 3600.
37 Theany T, Lars R, Jensen M, et al. Journal of Non-Crystalline Solids, 2020, 534, 119946.
38 Kapoor S, Januchta K, Youngman R, et al. Physical Review Materials, 2018, 2(6), 063603.
39 Xiong X, Li T M, Ma Q Q, et al. Chinese Journal of Theoretical and Applied Mechanics, 2018, 50(3),622(in Chinese).
熊迅, 李天密, 马棋棋, 等. 力学学报, 2018, 50(3), 622.
40 Kolli M, Hamidouche M, Bouaouadja N, et al. Journal of the European Ceramic Society, 2009, 29, 2697.
41 Fu J, Zhang B J, Ma J R. Journal of Aeronautical Materials, 2003, 23(S), 179(in Chinese).
付静, 张保军, 马眷荣. 航空材料学报, 2003, 23(S), 179.
42 Yu P P. Study on transient jet impingement heat transfer during the fast cooling process of glass physical tempering. Master's Thesis, Changzhou University, China, 2018 (in Chinese).
于平平. 玻璃物理钢化急冷工况下瞬态射流冲击换热研究. 硕士学位论文, 常州大学, 2018.
43 Daudeville L,Carre H. Journal of Thermal Stresses, 1998, 21, 667.
44 Zhang Z Y, Tian Y M, Chen F W, et al. Journal of Yanshan University, 2018, 42(1), 44(in Chinese).
张喆颖,田月梅,陈发伟, 等. 燕山大学学报, 2018, 42(1), 44.
45 Ragoen C, Sen S, Lambricht T, et al. Journal of Non-Crystalline Solids, 2017, 458, 129.
46 Liu X G, Bao Y W, Wan D T, et al. Journal of Inorganic Materials, 2020, 35(2), 211(in Chinese).
刘小根, 包亦望, 万德田, 等. 无机材料学报, 2020, 35(2), 211.
47 Sridharan S, Tomozawa M. Journal of Non-Crystalline Solids, 1995, 182, 262.
48 Zhao Y H, Li G X, Ma X P. Journal of the Chinese Ceramic Society, 2003, 31(4), 413(in Chinese).
赵永红, 李光新, 马新沛. 硅酸盐学报, 2003, 31(4), 413.
49 Mitchell A L, Smith C M. Journal of the American Ceramic Society, 2020, 103(9), 1.
50 Beall G H, Pinckney L R. Journal of the American Ceramic Society, 1999, 82(1), 5.
51 David W, Alex H, Neil S, et al.In:37th IEEE. USA, 2011,pp.1949.
52 Keefer K D, Michalske T A. American Ceramic Society Bulletin, 1983, 62(3), 419.
53 Uno T, Kasuga T, Nakayama S, et al. Journal of the American Ceramic Society, 1993, 76(2), 539.
54 Kishor P, Gadkaree K C. American Ceramic Society Bulletin, 1986, 65(2), 370.
55 Luo X T, Zhang L T. Acta Materiae Compositae Sinica, 1997, 14(3), 1 (in Chinese).
罗学涛, 张立同. 复合材料学报, 1997, 14(3), 1.
56 Cheng Y, Xiao H N. China Ceramics, 2005, 41(4), 41 (in Chinese).
成茵, 肖汉宁. 中国陶瓷, 2005, 41(4), 41.
57 Stavrou E, Zaug J M, Bastea S, et al. Journal of Applied Physics, 2017, 121, 175901.
58 Shen Z C, Zhao Y Y, Tian Z Q, et al. Journal of Non-Crystalline Solids, 2018, 499, 17.
59 Li B, Li W, Zheng J G. Journal of Electronic Materials, 2018, 47, 766.
60 Dal Maschio R, Scardi P. Ceramics International, 1991, 17, 31.
61 Eftekhari Y B, Alizadeh P, Rezazadeh L. Journal of the European Cera-mic Society, 2007, 27, 2311.
62 Mirhadi B, Mehdikhani B. Journal of Non-Crystalline Solids, 2011, 357, 3711.
63 Fan S W, Ma X, Ji B, et al. Ceramics International, 2019, 45(1), 550.
64 Yi H C, Guigne J Y, Moore J J, et al. Journal of Materials Synthesis and Processing, 2002, 10, 163.
65 Anusavice K J, Shen C, Vermost B, et al. Dental Materials, 1992, 8, 149.
66 Arun K V, Ian M S. Journal of the American Ceramic Society, 2010, 18(2), 27.
67 Mouritz N S, Lynn M T, Randall E Y, et al. Frontiers in Materials, 2016, 3, 1.
68 Calizo I, Bao W, Miao F, et al. Applied Physics Letters, 2007, 91, 201904.
69 Lee D Y, Kim D J, Song Y S. Journal of Materials Science Letters, 2002, 21, 1223.
70 Wei G, Li F, Tiesong L, et al. Ceramics International, 2019, 45, 5036.
71 Sibeko M A, Luyt A S, Saladino M L. Polymer Bulletin, 2017, 74, 2841.
72 Antoine G, Batra R C. Composite Structures, 2014, 116(1), 193.
73 Zou H, Wu S S, Shen J. Chemical Reviews, 2008, 108(9), 3893.
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