Please wait a minute...
材料导报  2023, Vol. 37 Issue (24): 22040360-11    https://doi.org/10.11896/cldb.22040360
  无机非金属及其复合材料 |
利用沙漠砂合成陶瓷的研究进展与应用前景
史志铭*
内蒙古工业大学材料科学与工程学院,呼和浩特 010051
Research Progress and Application Prospect of Using Desert Sand to Synthesize Ceramics
SHI Zhiming*
School of Materials Science and Engineering, Inner Mongolia University of Technology, Hohhot 010051, China
下载:  全 文 ( PDF ) ( 28087KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 硅酸盐陶瓷生产消耗了大量无机矿物,矿物开采破坏土地资源并且造成严重的环境污染。寻求可替代的原料生产陶瓷是解决这一问题的有效途径。我国沙漠砂储量巨大,其组分种类与硅酸盐陶瓷大体相近。以沙漠砂为原料合成陶瓷具有低成本、节约矿物和土地资源以及改善土地和沙漠生态环境的突出优势。但是,目前国内外在此方面的研究和应用相对较少。因此,本文介绍了国内外在利用沙漠砂合成陶瓷方面的最新研究成果,分析了沙漠砂陶瓷的致密化、相变、微结构和性能特点,讨论了沙漠砂的化学组成和微结构在陶瓷形成过程中的作用机理,指出了沙漠砂陶瓷合成过程中存在的问题及对策,对今后的研究方向提出了建议,对该领域的发展前景进行了展望。论证结果表明,沙漠砂是一种宝贵的陶瓷原料资源,其化学成分和微结构特点对陶瓷的合成和性能改善有显著的促进作用。通过优化陶瓷原料配比和制备工艺,可以开发多种性能优异的陶瓷材料。本综述有助于深入认识利用沙漠砂合成陶瓷的技术优势,对促进沙漠砂陶瓷材料的研发与应用有重要的指导意义和参考价值。
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
史志铭
关键词:  沙漠砂  硅酸盐  陶瓷  资源  生态环境  可持续发展    
Abstract: Manufacturing of silicate ceramics causes a huge consumption of inorganic minerals, which worsens land resources and results in serious environmental pollution. Seeking for alternative raw materials to produce ceramics is an effective method to solve these problems. China possesses a tremendous desert-sand resource, its composition species is similar to that of silicate ceramics. Using desert sand as a raw material to synthesize silicate ceramic products has a great industrial advantage and potential, which connects the low-cost manufacturing, economization of mineral and land resources, improvement of ecological environment of land and desert to sustainable development. However, there are few researches and applications in this field so far. Therefore, this paper reviews the latest research fruits of using desert sand to synthesize ceramics in domestic and abroad, analyzes the characteristics of densification, phase transformation, microstructure and properties of the desert-sand ceramics, discusses the effects of the chemical composition and microstructure of desert sand on forming process and mechanism of the ceramics, points out the problems that exist in the field and the synthesis process of desert-sand ceramics, as well as the specific solutions, ultimately, proposes the future research directions and predicts the prospect of developments. This review shows that desert sand is a valuable raw material resource for the synthesis of silicate ceramics, its chemical composition and microstructure have a great facilitation effect on the synthesis and pro-perties of the ceramics. Various desert-sand ceramic materials with excellent properties can be developed by optimizing the ratio of raw materials and the preparation techniques. This information is helpful to understand the technical advantages of using desert sand to synthesize ceramics and has an important guidance for promoting the research, development and application of desert-sand ceramic materials.
Key words:  desert sand    silicate    ceramic    resource    ecological environment    sustainable development
发布日期:  2023-12-19
ZTFLH:  TH145.1  
基金资助: 内蒙古自治区科技重大专项(ZDZX2018030)
通讯作者:  *史志铭,内蒙古工业大学材料科学与工程学院教授、博士研究生导师。1985年7月毕业于内蒙古工学院材料工艺系获学士学位,1988年7月毕业于吉林工业大学金属材料系获硕士学位,2001年6月毕业于清华大学材料科学与工程系获博士学位。从事结构陶瓷、环境材料、纳米功能材料和稀土改性铝合金等方面的研究工作。在Construc.Building Mater.、Scripta Mater.、Mater.Des.、J.Amer.Ceram.Soc.、J.Eur.Ceram.Soc.和Mater.Sci.Eng.:A等杂志上发表论文150余篇,授权发明专利20余件,获省部级科学技术一等奖2项。shizm@imut.edu.cn   
引用本文:    
史志铭. 利用沙漠砂合成陶瓷的研究进展与应用前景[J]. 材料导报, 2023, 37(24): 22040360-11.
SHI Zhiming. Research Progress and Application Prospect of Using Desert Sand to Synthesize Ceramics. Materials Reports, 2023, 37(24): 22040360-11.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.22040360  或          http://www.mater-rep.com/CN/Y2023/V37/I24/22040360
1 Wojciech Andrzejuk, DanutaBarnat-Hunek, Rafat Siddique, et al. Materials, 2018, 11, 658.
2 Song M G, Luo M M, Wang Q Y, et al. Science Technology and Engineering, 2017, 17(13), 303(in Chinese).
宋明光, 罗蒙蒙, 王群英, 等. 科学技术与工程, 2017, 17(13), 303.
3 Li Z, Li X, Tang Y, et al. Advanced Applied Ceramics, 2016, 115, 377.
4 http://www. ampcn. com/datainfo/picdata/imgshow. asp?id=565.
5 Shi Zhiming. Science and Technology Review, 2022, 40(19), 95(in Chinese).
史志铭. 科技导报, 2022, 40(19), 95.
6 Saberian M, Moradi M, Ramin V, et al. Geomechnical Engineering, 2018, 14, 553.
7 Zhang G, Song J, Yang J, et al. Building Environments, 2006, 41, 1478.
8 Chuah S, Duan W H, Pan Z, et al. Materials Design, 2016, 92, 571.
9 Sun Xudong, Liu Ying, Guo Shan, et al. Journal of Cleaner Product, 2021, 279, 123514.
10 Ling Jingfu, Wei Longming, Geng Jieli. Career Horizon, 2007, 24, 43.
11 Aydin T. Journal of the Australian Ceramic Society, 2017, 53, 109.
12 Ter T P, Seman A A, Min K C, et al. Journal of Cleaner Production, 2019, 241, 118144,
13 Ullman Gingrey Bowen. Translated by the State Key Laboratory of Advanced Ceramics and Fine Arts, Tsinghua University. Introduction to ceramics, Higher Education Press, China, 2010, pp. 32(in Chinese).
金格瑞·鲍恩·乌尔曼著, 清华大学新型陶艺与精细工艺国家重点实验室译. 陶瓷导论, 高等教育出版社, 2010, pp. 32.
14 Kouras Nabila, Harabi Abdelhamid, Bouzerara Ferhat, et al. Journal of the European Ceramic Society, 2017, 37, 3159.
15 Song Jieguang, Ji Gangchang, Li Shibin, et al. International Journal of Materials Research, 2013, 104, 93.
16 Peng Changqi, Ren Guohao, Peng Hua. Journal of Wuhan University of Technology, 1995, 17(2), 28(in Chinese).
彭长琪, 任国浩, 彭华. 武汉理工大学学报, 1995, 17(2), 28.
17 Shen Yinan, Chen Huahui, Hu Yu. Journal of Materials Research, 2011, 25(5), 550(in Chinese).
申轶男, 陈华辉, 胡宇. 材料研究学报, 2011, 25(5), 550.
18 内蒙古工业大学, 内蒙古展华科技有限公司. 中国专利, ZL202010005917. 6, 2020.
19 Wang Shigang. Preparation of porous ceramics by desert aeolian sand. Master’s Thesis, Inner Mongolia University of Technology, China, 2019(in Chinese).
王士刚, 利用沙漠风积沙制备多孔陶瓷的工艺研究. 硕士学位论文, 内蒙古工业大学, 2019.
20 Fei Y. In, Ahrens T J, editor. Mineral physics and crystallography a handbook of physical constants, American Geophysical Union, Washington. vol. 2. 1995. pp. 29.
21 Wang Ke. Study on preparation of solar energy thermal storage material from desert sand. Master’s Thesis, Wuhan University of Technology, China, 2011(in Chinese).
汪柯. 利用沙漠砂制备太阳能蓄热材料的研究. 硕士学位论文, 武汉理工大学, 2011.
22 Wang Ping, Li Guochang. Nonmetallic Ore, 2010, 33(5), 61(in Chinese).
王萍, 李国昌. 非金属矿, 2010, 33(5), 61.
23 Fan Wen. Study on preparation of quartz ceramics using desert quartz sand. Master’s Thesis, Inner Mongolia University of Technology, China, 2014(in Chinese).
范文. 利用石英砂制备石英质陶瓷的研究. 硕士学位论文, 内蒙古工业大学, 2014.
24 Luo Hongwei. Study on physical and chemical properties of desert sand and process of ceramic synthesis. Master’s Thesis, Inner Mongolia University of Technology, China, 2021(in Chinese).
骆宏伟. 沙漠沙的理化特性及合成陶瓷的工艺研究. 硕士学位论文, 内蒙古工业大学, 2021.
25 Wen Xiaoqing. Huang Sha Experimental study on preparation process of high-quartz Infrared ceramic antique tile. Master’s Thesis. Jingdezhen Ceramic Institute, China, 2013(in Chinese).
温晓庆. 黄沙制备高石英质红外瓷质仿古砖工艺试验研究. 硕士学位论文. 景德镇陶瓷学院, 2013.
26 安徽省含山瓷业股份有限公司. 中国专利, ZL201510297666. 2, 2015.
27 Xie Xiaomin, Zhang Xiaobo. Foundry Equipment Research, 2004(3), 39(in Chinese).
谢效民, 张晓波. 铸造设备研究, 2004(3), 39.
28 Wang Wenbin. Study on the process principle of the synthesis of oxide ceramics by aeolian sand. Ph. D. Thesis, Inner Mongolia University of Technology, China, 2017(in Chinese).
王文彬. 利用风积沙合成氧化物陶瓷的工艺原理研究. 博士学位论文, 内蒙古工业大学, 2017.
29 Wang W B, Shi Z M, Wang X G, et al. Journal of Ceramic Society of Japan, 2017, 125, 88,
30 Luo Ting, Gu Xingyong, Wu Junming, et al. Journal of Synthetic Crystals, 2018, 47(8), 1607 (in Chinese).
罗婷, 顾幸勇, 吴军明, 等. 人工晶体学报, 2018, 47(8), 1607.
31 Wang Wenbin, Shi Zhiming, Wang Zhixu, et al. Materials Letters, 2018, 221, 271.
32 内蒙古工业大学. 中国专利, ZL201810095084. X, 2018.
33 Wang Wenbin, Shi Zhiming, Wang Xiaoguang, et al, Ceramics International, 2016, 42, 4477.
34 Abdel S, Monem M, Hassan E, et al. Ceramics International, 2018, 44, 5855.
35 Rong Min. Study on preparation of cordierite low expansion ceramic material from desert yellow sand. Master’s Thesis. Jingdezhen Ceramic Institute, China, 2015(in Chinese)
荣敏. 用沙漠黄沙制备堇青石质低膨胀陶瓷材料的研究. 硕士学位论文, 景德镇陶瓷学院, 2015.
36 Zhang Yong. Study on synthesis of SiO2-ZrO2 multiphase ceramics by replacing quartz sand with eolian sand. Master’s Thesis, Inner Mongolia University of Technology, China, 2021(in Chinese).
张勇. 利用风积沙取代石英砂合成SiO2-ZrO2系复相陶瓷的研究. 硕士学位论文, 内蒙古工业大学, 2021.
37 Shi Zhiming, Han Chao, Wang Winbin. Journal of Materials in Civil Engineering, 2023, 35(8), 04023221.
38 Shi Zhiming. In:22nd International Conference on Composite Materials. Melbourne, Australia, 2019.
39 Wang Zhixu, Shi Zhiming, Wang Wenbin, et al. Ceramics International, 2019, 45, 13865.
40 Narottam P B, Choi S R. Ceramics International, 2015, 41, 3901.
41 Kedir N, Faucett D C, Sung R, et al. Ceramics International, 2018, 44, 2676.
42 内蒙古工业大学. 中国专利, CN202110009704. 5, 2021-04-16.
43 Wang Zidong. Study on the process principle of synthesis cordierite glass-ceramics from aeolian sand. Master’s Thesis, Inner Mongolia University of Technology, China, 2021(in Chinese).
王子东. 利用风积沙合成堇青石微晶玻璃的工艺原理研究. 硕士学位论文, 内蒙古工业大学, 2021.
44 Sung Y. M. Journal of Materials Science, 1996, 31, 5421.
45 Wang S M, Liang K M, Mei L F, et al. Key Engineering Materials, 2007, 336-338, 1856.
46 Radwan M, Kashiwagi T, Miyamoto Y. Ceramic Transactions, 2003, 142, 63.
47 Radwan M, Kashiwagi T, Miyamoto Y. Journal of the European Ceramic Society, 2003, 23, 2337.
48 Shi Z M, Luo H W, Wang H H, et al. Materials Today Communications, 2023, 35, 105685
49 Shi Z M, Pan F, Liu D Y, et al. Materials Letters, 2002, 57, 409.
50 Shi Z M, Liang K M, Zhang Q, et al. Journal of Materials Science, 2001, 36, 5227.
51 Lucia Pagliari, Monica Dapiaggi, Alessandro Pavese, et al. Journal of the European Ceramic Society, 2013, 33, 3403.
52 Mahmoud M. El Banna. Environmental Geology, 2004, 45, 690.
53 Zhao Wancang, Liu Lianwen, Chen Jun, et al. Science China:Earth Sciences, 2019, 49(9), 1425(in Chinese).
赵万苍, 刘连文, 陈骏, 等. 中国科学:地球科学, 2019, 49(9), 1425.
54 Liu Shu. Science & Technology Review, 1994, 12(11), 3 (in Chines).
刘恕. 科技导报, 1994, 12(11), 3.
55 Che Chi, Park Taejin, Wang Xuhui, et al. Nature Sustainability, 2019, 2, 122.
56 Zastrow M. Nature, 2019, 573, 474.
57 Shi Zhiming. In:The 14th National Symposium on Circular Economy and Ecological Industry and the Professional Committee of Industrial Ecological Economy and Technology of Chinese Ecological Economy Society. Taiyuan, 2019, pp. 8 (in Chinese)
史志铭. 第十四届全国循环经济与生态工业学术研讨会暨中国生态经济学会工业生态经济与技术专业委员会. 太原, 2019, pp. 8.
58 Shi Z M. Construction and Building Materials, 2022, 338, 127539.
[1] 刘发付, 高闯, 牟晓明, 张丛, 郭在在, 郭建斌, 曹剑武, 林广庆. 预烧结升温速率与HIP保温时间对AlON透明陶瓷透光率影响的研究[J]. 材料导报, 2023, 37(S1): 23030085-5.
[2] 彭启清, 刘明, 黄艳斐, 马国政, 郭伟玲, 王海斗. 热喷涂陶瓷-树脂复合涂层的研究现状[J]. 材料导报, 2023, 37(9): 21100184-12.
[3] 刘云福, 刘峰, 姚初清, 蒋丹枫, 韩文敏, 戴耀东. 基于泡沫陶瓷三维互穿网络负压浸渍法制备新型耐高温中子屏蔽材料[J]. 材料导报, 2023, 37(8): 21090118-9.
[4] 赵云松, 张迈, 戴建伟, 郭会明, 孙志军, 郭媛媛, 张剑, 花银群, 霍坤, 戴峰泽. 航空发动机涡轮叶片热障涂层研究进展[J]. 材料导报, 2023, 37(6): 21040168-7.
[5] 张曦挚, 崔红, 胡杨, 邓红兵. 利用等离子喷涂制备C/C复合材料表面耐烧蚀抗氧化涂层的研究进展[J]. 材料导报, 2023, 37(6): 21050162-7.
[6] 章国涛, 高艳, 刘书利, 孟德喜, 高娜燕, 郑勇. 低介电损耗Ca1-xSrxMgSi2O6微波介质陶瓷的结构和介电性能[J]. 材料导报, 2023, 37(4): 21080295-5.
[7] 周振豪, 姜勇刚, 冯军宗, 李良军, 冯坚. 直写成型制备多孔陶瓷技术研究进展[J]. 材料导报, 2023, 37(4): 20120004-7.
[8] 万林林, 周启明, 邓朝晖. 工程陶瓷磨削过程的声发射在线监测研究进展[J]. 材料导报, 2023, 37(4): 21050196-11.
[9] 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.
[10] 聂光临, 刘一军, 汪庆刚, 黄玲艳, 吴洋, 潘利敏, 包亦望, 饶平根. 基于机械活化法制备高强韧高柔性建筑陶瓷[J]. 材料导报, 2023, 37(24): 22040120-9.
[11] 王喜茂, 赵运才, 郭伟玲, 马国政, 王慧鹏, 王海斗. 冷喷涂铜基陶瓷复合涂层沉积机理与结构性能优化研究进展[J]. 材料导报, 2023, 37(24): 22040223-10.
[12] 李萌, 艾建平, 胡丽玲, 程丽红, 帅亚萍, 罗司玲, 周泽华, 陈智琴, 李文魁. YSZ多孔陶瓷的孔隙结构特征及压缩强度研究[J]. 材料导报, 2023, 37(24): 22060249-7.
[13] 李宇, 王建敏, 张弦, 欧阳顺利. 高附加值煤气化渣基材料开发研究进展[J]. 材料导报, 2023, 37(23): 22040354-12.
[14] 陈德钦, 曹雪凤, 黎峰荣, 崔永葆, 李纯纯. 微波介质材料谐振频率温度系数调控的研究现状与展望[J]. 材料导报, 2023, 37(22): 22020176-13.
[15] 刘嘉航, 吕哲, 周艳文, 解志文, 陈浩, 程蕾. 用于热障涂层的高熵陶瓷材料研究进展[J]. 材料导报, 2023, 37(22): 22060081-11.
[1] Yanzhen WANG, Mingming CHEN, Chengyang WANG. Preparation and Electrochemical Properties Characterization of High-rate SiO2/C Composite Materials[J]. Materials Reports, 2018, 32(3): 357 -361 .
[2] Yimeng XIA, Shuai WU, Feng TAN, Wei LI, Qingmao WEI, Chungang MIN, Xikun YANG. Effect of Anionic Groups of Cobalt Salt on the Electrocatalytic Activity of Co-N-C Catalysts[J]. Materials Reports, 2018, 32(3): 362 -367 .
[3] Qingshun GUAN,Jian LI,Ruyuan SONG,Zhaoyang XU,Weibing WU,Yi JING,Hongqi DAI,Guigan FANG. A Survey on Preparation and Application of Aerogels Based on Nanomaterials[J]. Materials Reports, 2018, 32(3): 384 -390 .
[4] Lijing YANG,Zhengxian LI,Chunliang HUANG,Pei WANG,Jianhua YAO. Producing Hard Material Coatings by Laser-assisted Cold Spray:a Technological Review[J]. Materials Reports, 2018, 32(3): 412 -417 .
[5] Zhiqiang QIAN,Zhijian WU,Shidong WANG,Huifang ZHANG,Haining LIU,Xiushen YE,Quan LI. Research Progress in Preparation of Superhydrophobic Coatings on Magnesium Alloys and Its Application[J]. Materials Reports, 2018, 32(1): 102 -109 .
[6] Wen XI,Zheng CHEN,Shi HU. Research Progress of Deformation Induced Localized Solid-state Amorphization in Nanocrystalline Materials[J]. Materials Reports, 2018, 32(1): 116 -121 .
[7] Xing LIANG, Guohua GAO, Guangming WU. Research Development of Vanadium Oxide Serving as Cathode Materials for Lithium Ion Batteries[J]. Materials Reports, 2018, 32(1): 12 -33 .
[8] Hao ZHANG,Yongde HUANG,Yue GUO,Qingsong LU. Technological and Process Advances in Robotic Friction Stir Welding[J]. Materials Reports, 2018, 32(1): 128 -134 .
[9] Laima LUO, Mengyao XU, Xiang ZAN, Xiaoyong ZHU, Ping LI, Jigui CHENG, Yucheng WU. Progress in Irradiation Damage of Tungsten and Tungsten AlloysUnder Different Irradiation Particles[J]. Materials Reports, 2018, 32(1): 41 -46 .
[10] Fengsen MA,Yan YU,Jie ZHANG,Haibo CHEN. A State-of-the-art Review of Cytotoxicity Evaluation of Biomaterials[J]. Materials Reports, 2018, 32(1): 76 -85 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed