INORGANIC MATERIALS AND CERAMIC MATRIX COMPOSITES |
|
|
|
|
|
Research Progress of Carrier-loaded Corrosion Inhibitor in Reinforced-Concrete Environments |
XU Ning1,2, YANG Heng1,2,*, XIONG Chuansheng3, CUI Zheng1,2,4, JIANG Peng1,2, LIU Can1,2
|
1 Nanjing Hydraulic Research Institute, Nanjing 210029, China 2 State Key Laboratory of Hydrology-Water Resources and Hydraulic Engineering, Nanjing 210029, China 3 School of Civil Engineering, Qingdao University of Technology, Qingdao 266033, Shandong, China 4 Nanjing R&D Hi-Tech Co., Ltd., Nanjing 210024, China |
|
|
Abstract Corrosion inhibitors provide an important way of protecting concrete steel bars from corrosion, and they have always been a research hotspot in the field of corrosion inhibition. However, the application of corrosion inhibitors still faces several problems, e.g., single performance, poor compatibility with cement-based materials, and difficulty in balancing environmental protection and effectiveness. A corrosion inhibitor is ‘indirectly’ mixed into concrete in the form of a carrier-loaded corrosion inhibitor (CLCI), which not only avoids the original defects of corrosion inhibitors, but it also plays the unique function of the carrier. In this paper, we systematically summarize the research progress of CLCIs in reinforced-concrete environments from the perspectives of the action mechanism of ion curing, slow-release, intelligent response, the pH autoimmune system, and the carrier adsorption effect and its influence on the properties of cement-based materials. Finally, research and application prospects of CLCI in concrete are detailed, and the problems to be solved are put forward to illuminate more possibilities for the application of CLCI in concrete engineering.
|
Published: 25 January 2024
Online: 2024-01-26
|
|
Fund:Natural Science Foundation of Jiangsu Province (BK20230119), the National Natural Science Foundation of China (51709253), and the Special Fund for Basic Research Business Expenses of Central Public Welfare Research Institute (Y422004). |
|
|
1 Etteyeb N, Dhouibi L, Takenouti H, et al. Cement and Concrete Compo-sites, 2016, 65(1), 94. 2 Etteyeb N, Dhouibi L, Takenouti H, et al. Cement and Concrete Compo-sites, 2015, 55(1), 241. 3 Djerbi A, Bonnet S, Khelidj A, et al. Cement and Concrete Research, 2008, 38(6), 877. 4 Song H W, Li C H, An K Y. Cement and Concrete Composites, 2008, 30(2), 113. 5 Vidal T, Castel A, Francois R. Cement and Concrete Research, 2007, 37(11), 1551. 6 Garces P, Saura P, Mendez A, et al. Corrosion Science, 2008, 50(2), 498. 7 Du R G. The effects of different inorganic corrosion inhibitors on the reinforcing steel in concrete. Ph. D. Thesis, Xiamen University, China, 2001(in Chinese). 杜归荣. 若干无机缓蚀剂对混凝土中钢筋的阻锈作用. 博士学位论文, 厦门大学, 2001. 8 Ormellese M, Berra M, Bolzoni F, et al. Cement and Concrete Research, 2006, 36(3), 536. 9 Jiang S B, Gao S, Jiang L H, et al. Cement and Concrete Composites, 2018, 91(8), 87. 10 Tian H W. Study on anti-corrosion performance and mechanism of environment-friendly reinforcing bar embroidery inhibitor. Ph. D. Thesis, Institute of Ocea-nology of the Chinese Academy of Sciences, China, 2012 (in Chinese). 田惠文. 环境友好型钢筋阻绣剂的防腐性能和机理研究. 博士学位论文, 中国科学院海洋研究所, 2012. 11 Xu J X, Wei J F, Ma G X, et al. Corrosion Science, 2020, 176(11), 108940. 12 Liu Y Q, Song Z J, Wang W Y, et al. Journal of Cleaner Production, 2019, 214(3), 298. 13 Cao Y H, Dong S G, Zheng D J, et al. Corrosion Science, 2017, 26(9), 166. 14 Zuo J D, Li H B, Zhan J, et al. Cement and Concrete Composites, 2020, 105(1), 103438. 15 Yang H, Li W H, Liu X Y, et al. Construction and Building Materials, 2019, 225(11), 90. 16 Zuo J D, Zhan J, Dong B Q, et al. Construction and Building Materials, 2017, 155(11), 323. 17 Yang H, Xiong C S, Liu X Y, et al. Construction and Building Mate-rials, 2021, 307, 124991. 18 Wang Y Y, Hu J, Ma Y W, et al. Construction and Building Materials, 2022, 317, 125946. 19 Da B, Chen Y, Yu H F, et al. Journal of Cleaner Production, 2022, 339, 130572. 20 Víctor O, Matías J, Alberto E. Langmuir, 2014, 30(7), 8408. 21 Anja, Olafsen, Sjstad, et al. European Journal of Inorganic Chemistry, 2015, 2015(10), 1775. 22 Suraj, Shiv, Charan, et al. The Journal of Physical Chemistry C, 2015, 119(11), 27695. 23 Taviot G C, Prevot V, Forano C, et al. Advanced Functional Materials, 2018, 27(7), 1703861. 24 Pang H, Zhao M, Zhao Q, et al. Nanoscale, 2017, 9(11), 15206. 25 Zubair M, Daud M, Mckay G, et al. Applied Clay Science, 2017, 143(7), 279. 26 Luo Y P. Synthesis and application af self-healing microcapsules. Ph. D. Thesis, South China University of Technology, China, 2011 (in Chinese). 罗永平. 自修复微胶囊的合成与应用研究. 博士学位论文, 华南理工大学, 2011. 27 Yow H N, Routh A F. Soft Matter, 2006, 2(11), 940. 28 Yu Z G. Research and application of corroded reinforced concrete structure and rust inhibitor. Ph. D. Thesis, Hunan University, China, 2004 (in Chinese). 余志钢. 锈蚀钢筋混凝土结构性能和钢筋阻锈剂性能的研究及应用. 博士学位论文, 湖南大学, 2004. 29 Maesen T. Cheminform, 2001, 137(12), 1. 30 Karapinar N. Journal of Hazardous Materials, 2009, 170(10), 1186. 31 Wu Z C, An Y, Wang Z W, et al. Journal of Hazardous Materials, 2008, 156(8), 317. 32 Layla E, Benedicte L, Habiba N, et al. Journal of Hazardous Materials, 2019, 364(2), 206. 33 Kovalevskiy N S, Lyulyukin M N, Selishchev D S, et al. Journal of Ha-zardous Materials, 2018, 358(9), 302. 34 Ferrer E L, Rollon A P, Mendoza H D, et al. Microporous and Mesoporous Materials, 2014, 188(4), 8. 35 Xu W T, Wei J X, Yang Z G, et al. Construction and Building Materials, 2020, 250(7), 118861. 36 Yang Z G. Preparation of loaded imidazoline laurate rust inhibitor and its protective performance on reinforced cement-based materials. Ph. D. Thesis, South China University of Technology, China, 2018 (in Chinese). 杨振国. 负载型月桂酸咪唑啉阻锈剂的制备及其对钢筋增强水泥基材料防护性能的研究. 博士学位论文, 华南理工大学, 2018. 37 Arumugam R, Ramamurthy K. Magazine of Concrete Research, 1996, 48(1), 141. 38 Wang X Z. Study on engineering geological properties of coral reefs and feasibility of large project construction on nansha islands. Ph. D. Thesis, Institute of Rock and Soil Mechanics, Chinese Academy of Sciences, China, 2008 (in Chinese). 王新志. 南沙群岛珊瑚礁工程地质特性及大型工程建设可行性研究. 博士学位论文, 中国科学院武汉岩土力学研究所, 2008. 39 Da B, Yu H F, Ma H, et al. Construction and Building Materials, 2016, 123(10), 47. 40 Wu M X, Yang Y W. Advanced Materials, 2017, 29(23), 1606134. 41 Li S X, Wang K K, Shi Y J, et al. Advanced Functional Materials, 2016, 26, 2715. 42 Cao J, Guo C, Guo X, et al. Journal of Molecular Liquids, 2020, 311, 113277. 43 Zhou W Q, Wang L, Li F, et al. Advanced Functional Materials, 2017, 27(6), 1605465. 44 Jian R K, Lin X B, Liu Z Q, et al. Composites Part B, 2020, 200(11), 108349. 45 Zuo J D, Wu B, Luo C Y, et al. Corrosion Science, 2019, 152(5), 120. 46 Yang Z X, Fischer H, Polder R. Cement and Concrete Composites, 2015, 58(4), 105. 47 Cao Y H, Zheng D J, Luo J S, et al. Journal of the Electrochemical Society, 2019, 166(11), C3106. 48 Xu J X, Song Y B, Zhao Y H, et al. Applied Clay Science, 2018, 163(10), 129. 49 Xu J X, Tan Q P, Mei Y J. Corrosion Science, 2020, 163(2), 108221. 50 Ke X Y, Bernal S A, Provis J L. Cement and Concrete Research, 2017, 100(10), 1. 51 Wei J F, Xu J X, Mei Y J, et al. Applied Clay Science, 2020, 187(3), 105495. 52 Shui Z H, Chen Y X, Guo W. Construction and Building Materials, 2015, 93(9), 1051. 53 Yang Z X, Fischer H, Polder R. Cement and Concrete Composites, 2014, 47(3), 87. 54 Tian Y W, Dong C F, Wang G, et al. Materials Letters, 2019, 236(2), 517. 55 Cao Y H, Zheng D J, Luo J S, et al. Journal of the Electrochemical Society, 2019, 166(1), C617. 56 Yang Z X, Polder R, Mol J, et al. Cement and Concrete Research, 2017, 100(10), 186. 57 Hu Y R, Li H H, Wang Q, et al. Construction and Building Materials, 2019, 229(12), 116921. 58 Yoon S, Moon J, Bae S, et al. Materials Chemistry and Physics, 2014, 145(3), 376. 59 Wu B, Zuo J D, Dong B Q, et al. Applied Clay Science, 2019, 180(11), 105181. 60 Ryu H S, Singh J K, Lee H S, et al. Construction and Building Materials, 2017, 133(2), 387. 61 Gu L, Ding J H, Yu H B. Progress in Chemistry, 2016, 28(5), 737 (in Chinese). 顾林, 丁纪恒, 余海斌. 化学进展, 2016, 28(5), 737. 62 Chen M Z, Wu F, Yu L W, et al. Crystengcomm, 2019, 21(9), 6790. 63 Xu J X, Song Y B, Tan Q P, et al. Journal of Materials Science, 2017, 52(10), 5908. 64 Javadian S, Yousefi A, Neshati J. Applied Surface Science, 2013, 285(12), 674. 65 Tian H W, Li W H, Cao W K, et al. Corrosion Science, 2013, 73(8), 281. 66 Tian H W, Li W H, Hou B R. Corrosion Science, 2011, 53(10), 3435. 67 Liu A, Tian H W, Ju X D, et al. Journal of the Taiwan Institute of Chemical Engineers, 2019, 104(9), 330. 68 Chen Z H, Yang W Z, Yin X S, et al. Progress in Organic Coatings, 2020, 146(9), 105750. 69 Jiang Y Q, Li J, Juan Y F, et al. Journal of Alloys and Compounds, 2019, 775, 1. 70 Anstice D J, Page C L, Page M M. Cement and Concrete Research, 2005, 35(2), 377. 71 Michel A, Nygaard P V, Geiker M R. Corrosion Science, 2013, 72(7), 26. 72 Kumar M P, Paulo J. M. M. Concrete:Microstructure, Properties, and Materials. China Architecture & Building Press, China, 2016, pp. 130 (in Chinese). 库马·梅塔, 保罗J. M. 蒙特罗. 混凝土微观结构、性能和材料, 中国建筑工业出版社, 2016, pp. 130. 73 Xu N, Jiang L H, Zhou H M, et al. Journal of Wuhan University of Technology-Materials Science Edition, 2021, 36 (6), 804. 74 Goh K H, Lim T T. Journal of Hazardous Materials, 2010, 180(1), 401. 75 Ping D, Chen W, Ma J, et al. Construction and Building Materials, 2013, 48(11), 601. 76 Duan Ping. Research on modification mechanism and the application of layered double hydroxides for durability of concrete. Ph. D. Thesis, Wuhan University of Technology, China, 2014 (in Chinese). 段平. 层状双氢氧化物改善混凝土耐久性能的机理及其应用研究. 博士学位论文, 武汉理工大学, 2014. 77 Geng H N, Duan P, Chen W, et al. Journal of Wuhan University of Technology-Materials Science Edition, 2014, 29(3), 97. 78 Shui Z H, Yu R, Chen Y X, et al. Construction and Building Materials, 2018, 176(7), 228. 79 Parker L M, Milestone N B, Newman R H. Industrial & Engineering Chemistry Research, 1995, 34(4), 1196. 80 Ambrogi V, Fardella G, Grandolini G, et al. AAPS PharmSciTech, 2002, 3(3), 77. 81 Qi F L, Li S P, Zhang X Q. Acta Chimica Sinica, 2012, 70(20), 2162 (in Chinese). 齐凤林, 李淑萍, 张晓晴. 化学学报, 2012, 70(20), 2162. 82 Shkirskiy V, Keil P, Hintze-Bruening H, et al. ACS Applied Materials and Interfaces, 2015, 7(10), 25180. 83 Da B, Yu H F, Ma H Y, et al. Journal of Chinese Society for Corrosion and Protection, 2019, 39(4), 152 (in Chinese). 达波, 余红发, 麻海燕, 等. 中国腐蚀与防护学报, 2019, 39(4), 152. 84 Rojas R, Palena M C, Jimenez-Kairuz A F, et al. Applied Clay Science, 2012, 62(7), 15. 85 Tian H W, Li W H, Liu A, et al. Corrosion Science, 2018, 131(2), 1. 86 Zhu Y Y. Design and preparation of pH-sensitive organic micro-nano anticorrosion capsules and investigation on the related inhibition mechanism. Ph. D. Thesis, South China University of Technology, China, 2018 (in Chinese). 朱洋洋. pH敏感型有机微纳阻锈胶囊的设计制备及阻锈机理的研究. 博士学位论文, 华南理工大学, 2018. 87 Zhu Y Y, Ma Y W, Yu Q J, et al. Materials and Design, 2017, 119(4), 254. 88 Hu J, Zhu Y Y, Hang J Z, et al. Construction and Building Materials, 2021, 267(1), 121011. 89 Dong B Q, Wang Y S, Fang G H, et al. Cement and Concrete Compo-sites, 2015, 56(2), 46. 90 Gomes C, Mir Z, Rui S, et al. Materials, 2020, 13(7), 1769. 91 Song Z J, Liu Y Q, Jiang L H, et al. Construction and Building Materials, 2021, 311, 125331. 92 Zhang Q, Feng P, Wang H C, et al. Materials Reports, 2022, 36(4), 1 (in Chinese). 张琪, 冯攀, 王浩川, 等. 材料导报, 2022, 36(4), 1. 93 Guo L S, Zhang Q Y, Han S X. Journal of Agricultural Safety and Health, 2002, 8(12), 385. 94 Hunter A J, Drinkwater B W, Wilcox P D. Ndt and E International, 2010, 43(3), 78. 95 Gromov A I, Osipov L, Yurkin Y Y, et al. Biomedical Engineering, 2015, 49(7), 120. 96 Zhang P, Zhang G G, Wang W. Bioresource Technology, 2007, 98(1), 207. 97 Ichikawa T, Natsu W. Procedia Cirp, 2013, 6(7), 326. 98 Sutcliffe M, Weston M, Dutton B, et al. Ndt & E International, 2012, 51(10), 16. 99 Xu N, Song Z J, Guo M Z, et al. Cement and Concrete Composites, 2021, 118(6), 103951. 100 Wang Y S, Fang G H, Ding W J, et al. Scientific Reports, 2015, 5(12), 18484. 101 Wang Y S, Ding W J, Fang G H, et al. Construction and Building Materials, 2016, 125(10), 742. 102 Liu A, Tian H W, Li W H, et al. Applied Surface Science, 2018, 462(12), 175. 103 Liu Ang. Construction and mechanism of hydrotalcite-based functional corrosion inhibitor-coating protection system. Ph. D. Thesis, Institute of Oceanology, Chinese Academy of Sciences, China, 2020 (in Chinese). 刘昂. 水滑石基功能化缓蚀-涂层防护体系构建和机制研究. 博士学位论文, 中国科学院海洋研究所, 2020. 104 Zhu Y X, Song G L, Wu P P. Journal of Magnesium and Alloys, DOI: 10.1016/j.jma.2021.11.019. 105 Dou Z, Zhang Y, Shulha T. Surface and Coatings Technology, 2022, 439(6), 128414. 106 Zhan J. Preparation of polymer/rust inhibitor microcapsules by centrifugal-coating method and characterization of rust resistance. Master’s Thesis, Shenzhen University, China, 2017 (in Chinese). 詹嘉. 离心-包衣法制备聚合物/阻锈剂微胶囊及其阻锈性能的研究. 硕士学位论文, 深圳大学, 2017. 107 Yang Z, Fischer H, Cerezo J, et al. Construction and Building Materials, 2013, 47, 1436. 108 Gu Y. Modifying cementitious materials with core-shell nano-SiO2. Ph. D. Thesis, Southeast University, China, 2017 (in Chinese). 顾越. 核壳纳米SiO2改性水泥基材料性能研究. 博士学位论文, 东南大学, 2017. 109 Land G, Stephan D. Cement and Concrete Composites, 2015, 57(3), 64. 110 Booshehrian A, Hosseini P. Magazine of Concrete Research, 2011, 2(1), 167. 111 Makar J M, Chan G W. Journal of the American Ceramic Society, 2010, 92(6), 1303. 112 Bo Y L, Kurtis K E. Journal of the American Ceramic Society, 2010, 93(10), 3399. 113 Wu Y Y, Duan P, Yan C J. Applied Clay Science, 2018, 158(6), 123. 114 Guan X M, Li H Y, Luo S Q, et al. Cement and Concrete Composites, 2016, 70(7), 15. 115 Ke X Y, Bernal S A, Provis J. Green Materials, 2018, 10(7), 1. 116 Cao L, Guo J T, Tian J H, et al. Construction and Building Materials, 2018, 184(9), 203. 117 Liu C S, Wei S. Journal of Materials Science:Materials in Medicine, 1997, 8(12), 803. 118 Yang H, Xiong C S, Liu A, et al. Materials Letters, 2021, 300(10), 130228. 119 Zhutovsky S, Kovler K, Bentur A. Cement and Concrete Research, 2011, 41(9), 981. 120 Ghourchian S, Wyrzykowski M, Lura P, et al. Construction and Buil-ding Materials, 2013, 40(3), 135. 121 Jensen O M, Hansen P F. Cement and Concrete Research, 2002, 32(6), 973. 122 Parveen S, Rana S, Fangueiro R, et al. Cement and Concrete Research, 2015, 73(7), 215. 123 Li H Y, Xu C, Guan X M, Zhang H B, et al. Advances in Cement Research, 2018, 32(6), 1. 124 Qu Z Y, Yu Q L, Brouwers H J H. Cement and Concrete Research, 2018, 105(3), 81. 125 Liu T, Chen Y, Yu Q, et al. Construction and Building Materials, 2020, 250, 118865. |
|
|
|