Please wait a minute...
材料导报  2019, Vol. 33 Issue (17): 2902-2909    https://doi.org/10.11896/cldb.18090039
  无机非金属及其复合材料 |
利用XCT技术检测水泥基材料微观结构的研究进展
王耀城1,2,杨文根1,2,李周义1,2,刘伟1,2,刘冰2,3
1 深圳大学土木工程学院,深圳 518060
2 广东省滨海土木工程耐久性重点实验室,深圳 518060
3 深圳信息职业技术学院交通与环境学院,深圳 518172
Review on Microstructure Study of Cementitious Materials with XCT Technology
WANG Yaocheng1,2, YANG Wengen1,2, LI Zhouyi1,2, LIU Wei1,2, LIU Bing2,3
1 School of Civil Engineering, Shenzhen University, Shenzhen 518060
2 Guangdong Provincial Key Laboratory of Durability for Marine Civil Engineering, Shenzhen 518060
3 School of Traffic and Environment, Shenzhen Institute of Information Technology, Shenzhen 518172
下载:  全 文 ( PDF ) ( 26555KB ) 
输出:  BibTeX | EndNote (RIS)      
摘要 本文归纳了X射线计算机断层扫描技术扫描及重构的工作原理,总结并讨论了该技术在划分材料内部组分、水泥水化过程跟踪、孔结构及细观裂缝判定、外界侵蚀物质迁移造成的微观结构变化和钢筋锈蚀开裂等领域的最新研究进展,介绍了世界上最新XCT仪器研究水泥基材料孔结构实时变化的实例。最后,对今后XCT技术在定量研究水泥基材料微观结构变化的研究方向提出了建议。
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
王耀城
杨文根
李周义
刘伟
刘冰
关键词:  X射线计算机断层扫描  水泥基材料  物质传输  微观结构    
Abstract: n this review, scanning and reconstruction principles of XCT are introduced. The latest progress of XCT application on determination of cement components, tracking of cement hydration process, identification of pore structure and micro-crack, change in microstructure due to ingress of external substances and formation of cracks caused by corrosion of reinforcement are presented. Subsequently, an example of using the most advanced XCT on testing development of pore structure is raised. Finally, existing problems on the application of XCT in testing microstructure development of cementitious materials that need to be solved are recommended.
Key words:  X-ray computational tomography    cementitious materials    material transfer    microstructure
               出版日期:  2019-09-10      发布日期:  2019-07-23
ZTFLH:  TU528  
基金资助: 国家自然科学基金(51520105012;51508338;51678368;51478271)
作者简介:  王耀城,博士,深圳大学土木工程学院讲师,硕士生导师。2014年毕业于英国Queen's University Belfast土木工程专业。主要从事土木工程材料耐久性、水泥基材料化学、无损检测技术的研究和教学工作。主持国家级、省市级纵向科研项目共三项,同时参与多项与研究领域相关的其他课题,以第一及通讯作者身份发表国内外高水平期刊论文十余篇。
刘伟,深圳大学土木工程学院副教授,硕士生导师。毕业于中南大学土木工程专业,主要从事水泥基材料及混凝土结构耐久性的教学和研究。主持国家级、省市级项目共3项,在国内外专业杂志上发表期刊论文20余篇。
引用本文:    
王耀城,杨文根,李周义,刘伟,刘冰. 利用XCT技术检测水泥基材料微观结构的研究进展[J]. 材料导报, 2019, 33(17): 2902-2909.
WANG Yaocheng, YANG Wengen, LI Zhouyi, LIU Wei, LIU Bing. Review on Microstructure Study of Cementitious Materials with XCT Technology. Materials Reports, 2019, 33(17): 2902-2909.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.18090039  或          http://www.mater-rep.com/CN/Y2019/V33/I17/2902
1 Jenkins R. X-Ray fluorescence spectrometer, Wiley,New York,1999.2 Bertin E P. Principles and practice of X-Ray spectrometric analysis,Plenum,New York, 2012.3 Kalender.Computer tomography, People's Health Publishing House,China, 2003(in Chinese).Kalender.计算机体层成像,人民卫生出版社, 2003.4 Wan K, Chen L, Xu Q. Science China Technological Sciences, 2015,58(3),485.5 Herman. Reconstruct image from projection—the theoretical basis of CT, Science Press,China, 1985(in Chinese).Herman. 由投影重建图像—CT 的理论基础, 科学出版社,1985.6 Wesley D B, Ana D, Hannelore D. Applied Clay Science, 2015,118,258.7 Lechner P, Eckbauer S, Hartmann R, et al. Nuclear Instruments & Methods in Physics Research Section a-Accelerators Spectrometers Detectors and Associated Equipment, 1996,377(2-3),346.8 Boin M, Haibel A. Optics Express, 2006,14(25),12071.9 Moradian M, Hu Q, Aboustait M, et al. Materials & Design, 2017, 136(Supplement C),137.10 Kak A C. Principles of computerized tomographic imaging, IEEE Press,New York,1988.11 Zhang M Z, He Y J, Ye G, et al. Construction and Building Materials, 2012,27(1),472.12 Trtik P, Diaz A, Guizar-Sicairos M, et al. Cement Concrete Composites, 2013,36,71.13 You T, Abu Al-Rub R K, Darabi M K, et al. Construction and Building Materials, 2012,28(1),531.14 Silva D A, Monteiro P J M. Cement and Concrete Research, 2006,36(8),1501.15 Parisatto M, Dalconi M C, Valentini L, et al. Journal of Materials Science, 2015,50(4),1805.16 Cuesta A, De la Torre AG, Santacruz I, et al. Journal of Physical Che-mistry, 2017,121(5),3044.17 Garboczi E J, Bentz D P. Journal of Materials Science, 1992,27(8),2083.18 Bentz D P, Mizell S, Satterfield S, et al. Journal of Research of the National Institute of Standards and Technology, 2002,107(2),137.19 Chotard T J, Boncoeur-Martel M P, Smith A, et al. Cement Concrete Comp, 2003,25(1),145.20 Mehta P K. Concrete: Microstructure, properties and Materials, McGraw-Hill, New York,2006.21 Jia Y D, Yan P Y. Journal of the Chinese Ceramic Society, 2010,38(7),1346(in Chinese).贾耀东,阎培渝.硅酸盐学报,2010,38(7),1346.22 Bentz D P, Quenard D A, Kunzel H M, et al. Materials and Structures, 2000,33,147.23 Ren W Y, Yang Z J, Huang Y J. Journal of Hydraulic Engineering, 2015(4),452(in Chinese).任文渊, 杨贞军, 黄宇劼.水利学报, 2015(4),452.24 Johns R A, Steude J S, Castanier L M, et al. Journal of Geophysical Research-Solid Earth, 1993,98(B2),1889.25 Yuan Q, Junrui C, Weihua D, et al. Journal of Civil Engineering and Management,2016,22(6),792.26 Bossa N, Chaurand P, Vicente J, et al. Cement and Concrete Research, 2015,67,138.27 Wang Y S, Dai J G. NDT & E International, 2017,86,28.28 Chung S Y, Abd Elrahman M, Stephan D, et al. Construction and Buil-ding Materials, 2016,118,204.29 Kim K Y, Yun T S, Park K P. Cement and Concrete Research, 2013,50,34.30 Promentilla M A B, Cortez S M, Papel R A D, et al. Materials (Basel), 2016,9(5),388.31 Stovall T, De Larrard F, Buil M. Powder Technology, 1986,48(1),1.32 Sugiyama T, Promentilla M A B, Hitomi T, et al. Cement and Concrete Research, 2010,40(8),1265.33 Darma I S, Sugiyama T, Promentilla M A B. Journal of Advanced Concrete Technology, 2013,11(10),266.34 Bullard J W, Jennings H M, Livingston R A, et al. Cement and Concrete Research, 2011,41(12),1208.35 Prade F, Fischer K, Heinz D, et al. Scientific Reports, 2016,6,29108.36 Prade F, Chabior M, Malm F, et al. Cement and Concrete Research, 2015,74,19.37 Bennett E E, Kopace R, Stein A F, et al. Medical Physics, 2010,37(11),6047.38 Burlion N, Bernard D, Chen D. Cement and Concrete Research, 2006,36(2),346.39 Alonso C, Andrade C, Rodriguez J, et al. Materials and Structures, 1998,31(211),435.40 Dong B, Fang G, Liu Y, et al. Cement and Concrete Research, 2017,100,311.41 Michel A, Pease B J, Geiker M R, et al. Cement and Concrete Research, 2011,41(11),1085.42 Sun H F, Zhao D D, Li G H, et al. Journal of Chinese Electronic Microscopy Society, 2015,34(6),514(in Chinese).孙红芳,赵钿钿,李冠桦,等.电子显微学报,2015,34(6),514.
[1] 陈永佳, 刘建科. SiO2掺杂浓度对ZnO压敏陶瓷结构与性能的影响[J]. 材料导报, 2019, 33(z1): 161-164.
[2] 陈庆, 王慧, 蒋正武, 朱合华, 马瑞. 基于中心粒子模型的超高性能水泥基材料水化进程模拟[J]. 材料导报, 2019, 33(8): 1312-1316.
[3] 张默, 王诗彧. 常温制备赤泥-低钙粉煤灰基地聚物的试验和微观研究[J]. 材料导报, 2019, 33(6): 980-985.
[4] 潘清, 陈婷, 潘锐之, 刘宝, 李东旭. 复掺硅灰的硫酸钙晶须改性水泥基复合材料的力学性能与微观结构[J]. 材料导报, 2019, 33(2): 257-263.
[5] 王爱国, 朱愿愿, 李燕, 刘开伟, 徐海燕, 孙道胜, 范良朝. 表面改性硅/铝质材料及其在水泥基材料中应用的研究进展[J]. 材料导报, 2019, 33(15): 2538-2545.
[6] 张王田, 张云升, 吴志涛, 刘乃东, 袁涤非. 玻璃纤维增强水泥基材料组成优化设计与性能[J]. 材料导报, 2019, 33(14): 2331-2336.
[7] 王译文, 王海斗, 马国政, 陈书赢, 何鹏飞, 丁述宇. Ti4O7功能陶瓷材料研究与应用现状[J]. 材料导报, 2019, 33(1): 143-151.
[8] 张晓佳, 张高展, 孙道胜, 刘开伟. 水泥基材料硫酸盐侵蚀机理的研究进展[J]. 《材料导报》期刊社, 2018, 32(7): 1174-1180.
[9] 郭思文, 邵媛, 古正富, 任国富, 张华光. 锌含量对铝基可降解合金降解速率的影响[J]. 材料导报, 2018, 32(6): 947-950.
[10] 牛恒茂, 武文红, 赵燕茹, 邢永明. 基于PVA纤维-基体界面性能分析水泥基材料的弯曲性能[J]. 材料导报, 2018, 32(6): 995-999.
[11] 朱彬荣, 潘金龙, 周震鑫, 张洋. 3D打印技术应用于大尺度建筑的研究进展[J]. 材料导报, 2018, 32(23): 4150-4159.
[12] 曹园章, 郭丽萍, 臧文洁, 张健, 薛晓丽. 氯盐和硫酸盐交互作用下水泥基材料的破坏机理综述[J]. 材料导报, 2018, 32(23): 4142-4149.
[13] 毛倩瑾, 伍文文, 梁鹏, 王子明, 崔素萍. 海藻酸钙/环氧微胶囊在水泥基材料中的自修复作用[J]. 材料导报, 2018, 32(22): 4016-4021.
[14] 张鹏, 冯竟竟, 陈伟, 刘虎, 杨进波. 混凝土损伤自修复技术的研究与进展[J]. 材料导报, 2018, 32(19): 3375-3386.
[15] 畅庚榕, 刘明霞, 马飞, 徐可为. 微应变诱导各向异性硅纳米晶形成及其光学特性[J]. 材料导报, 2018, 32(18): 3104-3109.
[1] 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 .
[2] Huimin PAN,Jun FU,Qingxin ZHAO. Sulfate Attack Resistance of Concrete Subjected to Disturbance in Hardening Stage[J]. Materials Reports, 2018, 32(2): 282 -287 .
[3] Siyuan ZHOU,Jianfeng JIN,Lu WANG,Jingyi CAO,Peijun YANG. Multiscale Simulation of Geometric Effect on Onset Plasticity of Nano-scale Asperities[J]. Materials Reports, 2018, 32(2): 316 -321 .
[4] Xu LI,Ziru WANG,Li YANG,Zhendong ZHANG,Youting ZHANG,Yifan DU. Synthesis and Performance of Magnetic Oil Absorption Material with Rice Chaff Support[J]. Materials Reports, 2018, 32(2): 219 -222 .
[5] Ninghui LIANG,Peng YANG,Xinrong LIU,Yang ZHONG,Zheqi GUO. A Study on Dynamic Compressive Mechanical Properties of Multi-size Polypropylene Fiber Concrete Under High Strain Rate[J]. Materials Reports, 2018, 32(2): 288 -294 .
[6] XU Zhichao, FENG Zhongxue, SHI Qingnan, YANG Yingxiang, WANG Xiaoqi, QI Huarong. Microstructure of the LPSO Phase in Mg98.5Zn0.5Y1 Alloy Prepared by Directional Solidification and Its Effect on Electromagnetic Shielding Performance[J]. Materials Reports, 2018, 32(6): 865 -869 .
[7] ZHOU Rui, LI Lulu, XIE Dong, ZHANG Jianguo, WU Mengli. A Determining Method of Constitutive Parameters for Metal Powder Compaction Based on Modified Drucker-Prager Cap Model[J]. Materials Reports, 2018, 32(6): 1020 -1025 .
[8] WANG Tong, BAO Yan. Advances on Functional Polyacrylate/Inorganic Nanocomposite Latex for Leather Finishing[J]. Materials Reports, 2017, 31(1): 64 -71 .
[9] HUANG Dajian, MA Zonghong, MA Chenyang, WANG Xinwei. Preparation and Properties of Gelatin/Chitosan Composite Films Enhanced by Chitin Nanofiber[J]. Materials Reports, 2017, 31(8): 21 -24 .
[10] YUAN Xinjian, LI Ci, WANG Haodong, LIANG Xuebo, ZENG Dingding, XIE Chaojie. Effects of Micro-alloying of Chromium and Vanadium on Microstructure and Mechanical Properties of High Carbon Steel[J]. Materials Reports, 2017, 31(8): 76 -81 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed