Chemical Industry and Engineering Progress ›› 2023, Vol. 42 ›› Issue (9): 4894-4904.DOI: 10.16085/j.issn.1000-6613.2022-1898
• Resources and environmental engineering • Previous Articles Next Articles
SONG Weitao(), SONG Huiping(), FAN Zhenlian, FAN Biao, XUE Fangbin
Received:
2022-10-13
Revised:
2022-12-19
Online:
2023-09-28
Published:
2023-09-15
Contact:
SONG Huiping
通讯作者:
宋慧平
作者简介:
宋伟涛(1999—),男,硕士研究生,研究方向为超疏水涂层。E-mail:405136367@qq.com。
基金资助:
CLC Number:
SONG Weitao, SONG Huiping, FAN Zhenlian, FAN Biao, XUE Fangbin. Research progress of fly ash in anti-corrosion coatings[J]. Chemical Industry and Engineering Progress, 2023, 42(9): 4894-4904.
宋伟涛, 宋慧平, 范朕连, 樊飙, 薛芳斌. 粉煤灰在防腐涂料中的研究进展[J]. 化工进展, 2023, 42(9): 4894-4904.
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URL: https://hgjz.cip.com.cn/EN/10.16085/j.issn.1000-6613.2022-1898
密度 /g·cm-3 | 表观密度 /g·cm-3 | 密实度 /g·cm-3 | 原灰标准稠度 /% | 需水量 /% | 28d抗压强度比 /% |
---|---|---|---|---|---|
2.1 | 780 | 36.5 | 48.0 | 106 | 66 |
密度 /g·cm-3 | 表观密度 /g·cm-3 | 密实度 /g·cm-3 | 原灰标准稠度 /% | 需水量 /% | 28d抗压强度比 /% |
---|---|---|---|---|---|
2.1 | 780 | 36.5 | 48.0 | 106 | 66 |
组分 | 组分的质量分数/% | |
---|---|---|
F类 | C类 | |
SiO2 | 41.60~60.00 | 33.00~43.65 |
Al2O3 | 17.74~29.45 | 19.39~23.14 |
Fe2O3 | 4.88~25.40 | 1.46~5.91 |
CaO | 1.25~9.30 | 21.80~27.66 |
MgO | 0.20~0.90 | 4.86~5.64 |
K2O | 1.9~2.79 | 0.47~2.08 |
Na2O | 0.36~0.88 | 1.38~3.70 |
LOI | 0.22~2.45 | 0.25~0.61 |
组分 | 组分的质量分数/% | |
---|---|---|
F类 | C类 | |
SiO2 | 41.60~60.00 | 33.00~43.65 |
Al2O3 | 17.74~29.45 | 19.39~23.14 |
Fe2O3 | 4.88~25.40 | 1.46~5.91 |
CaO | 1.25~9.30 | 21.80~27.66 |
MgO | 0.20~0.90 | 4.86~5.64 |
K2O | 1.9~2.79 | 0.47~2.08 |
Na2O | 0.36~0.88 | 1.38~3.70 |
LOI | 0.22~2.45 | 0.25~0.61 |
1 | 吴保意, 刘奥林, 张金梅, 等. 可溶性硅酸钠盐水溶液对金属腐蚀性分析[J]. 化工进展, 2020, 39(S2): 78-82. |
WU Baoyi, LIU Aolin, ZHANG Jinmei, et al. Corrosivity of soluble sodium silicate aqueous solution to metals[J]. Chemical Industry and Engineering Progress, 2020, 39(S2): 78-82. | |
2 | LIU Xiaoyan, Handuo JIE, LIU Ruidan, et al. Research on the preparation and anticorrosion properties of EP/CeO2-GO nanocomposite coating[J]. Polymers, 2021, 13(2): 183. |
3 | WANG Xiao, LI Yuan, LI Cheng, et al. Highly orientated graphene/epoxy coating with exceptional anti-corrosion performance for harsh oxygen environments[J]. Corrosion Science, 2020, 176: 109049. |
4 | MARCEAUX Sandra, BRESSY Christine, PERRIN François-Xavier, et al. Development of polyorganosilazane–silicone marine coatings[J]. Progress in Organic Coatings, 2014, 77(11): 1919-1928. |
5 | 王杨松, 王英丹, 于帅, 等. 金属防腐及其防腐蚀措施的研究[J]. 辽宁化工, 2020, 49(3): 315-318. |
WANG Yangsong, WANG Yingdan, YU Shuai, et al. Research on metal corrosion prevention and corrosion prevention measures[J]. Liaoning Chemical Industry, 2020, 49(3): 315-318. | |
6 | 张海懿, 王萌. 防腐涂料的现状与进展[J]. 价值工程, 2018, 37(15): 262-264. |
ZHANG Haiyi, WANG Meng. Status and progress of anti-corrosion coating[J]. Value Engineering, 2018, 37(15): 262-264. | |
7 | 刘秋萍, 张凌燕, 邱杨率, 等. 石墨烯在防腐涂料中的应用进展[J]. 矿产保护与利用, 2020, 40(3): 153-160. |
LIU Qiuping, ZHANG Lingyan, QIU Yangshuai, et al. Application progress on graphene modified anti-corrosion coatings[J]. Conservation and Utilization of Mineral Resources, 2020, 40(3): 153-160. | |
8 | ARGYROPOULOS John, POPA Paul, SPILMAN Gary, et al. Seed oil based polyester polyols for coatings[J]. Journal of Coatings Technology and Research, 2009, 6(4): 501-508. |
9 | SAMBYAL Pradeep, RUHI Gazala, BHANDARI Hema, et al. Advanced anti corrosive properties of poly(aniline-co-o-toluidine)/flyash composite coatings[J]. Surface and Coatings Technology, 2015, 272: 129-140. |
10 | 饶辉凯, 曲茵, 程家运. 粉煤灰综合利用的建议[J]. 化工进展, 2011, 30(S1): 400-401. |
RAO Huikai, QU Yin, CHENG Jiayun. Advice of comprehensive utilization of fly ash[J]. Chemical Industry and Engineering Progress, 2011, 30(S1): 400-401. | |
11 | ZHUANG Xiao yu, CHEN Liang, KOMARNENI Sridhar, et al. Fly ash-based geopolymer: Clean production, properties and applications[J]. Journal of Cleaner Production, 2016, 125: 253-267. |
12 | 张祥成, 孟永彪. 浅析中国粉煤灰的综合利用现状[J]. 无机盐工业, 2020, 52(2): 1-5. |
ZHANG Xiangcheng, MENG Yongbiao. Brief analysis on present situation of comprehensive utilization of fly ash in China[J]. Inorganic Chemicals Industry, 2020, 52(2): 1-5. | |
13 | MATHAPATI Mahantayya, AMATE Krian, DURGA PRASAD C, et al. A review on fly ash utilization[J]. Materials Today: Proceedings,2022,50: 1535-1540. |
14 | 张力, 李星吾, 张元赏, 等. 粉煤灰综合利用进展及前景展望[J]. 建材发展导向, 2021, 19(24): 1-6. |
ZHANG Li, LI Xingwu, ZHANG Yuanshang, et al. Progress and Prospect of comprehensive utilization of fly ash [J]. Development Guide to Building Materials, 2021, 19(24): 1-6. | |
15 | 蒋雪萍, 王雪梅, 季宏兵. 粉煤灰的改性及应用研究进展[J]. 化工新型材料, 2021, 49(S1): 78-82, 87. |
JIANG Xueping, WANG Xuemei, JI Hongbing. Research progress on modification and application of flyash[J]. New Chemical Materials, 2021, 49(S1): 78-82, 87. | |
16 | PROMSAWAT Pongsakon, CHATVEERA Burachat, Gritsada SUA-IAM, et al. Properties of self-compacting concrete prepared with ternary Portland cement-high volume fly ash-calcium carbonate blends[J]. Case Studies in Construction Materials, 2020, 13: e00426. |
17 | 唐明秀, 宋慧平, 薛芳斌. 粉煤灰在涂料中的应用研究进展[J]. 洁净煤技术, 2020, 26(6): 23-33. |
TANG Mingxiu, SONG Huiping, XUE Fangbin. Research progress of application of fly ash in coatings[J]. Clean Coal Technology, 2020, 26(6): 23-33. | |
18 | 余子炎. 粉煤灰在火电厂防腐涂料填充剂的应用[J]. 全面腐蚀控制, 2020, 34(7): 85-89. |
YU Ziyan. Application of fly ash in the filler of anticorrosive coating in thermal power plant[J]. Total Corrosion Control, 2020, 34(7): 85-89. | |
19 | WANG Jintao, WANG Hongfei, GENG Guihong. Flame-retardant superhydrophobic coating derived from fly ash on polymeric foam for efficient oil/corrosive water and emulsion separation[J]. Journal of Colloid and Interface Science, 2018, 525: 11-20. |
20 | AGUIRRE-GUERRERO Ana María, ROBAYO-SALAZAR Rafael Andrés, DE GUTIÉRREZ Ruby Mejía. A novel geopolymer application: Coatings to protect reinforced concrete against corrosion[J]. Applied Clay Science, 2017, 135: 437-446. |
21 | JORGE S, DIAS-DA-COSTA D, JÚLIO E N B S. Influence of anti-corrosive coatings on the bond of steel rebars to repair mortars[J]. Engineering Structures, 2012, 36: 372-378. |
22 | Siva BÖHM. Graphene against corrosion[J]. Nature Nanotechnology, 2014, 9(10): 741-742. |
23 | 马骏, 孙冬, 张明爽, 等. 氧化石墨烯改性环氧树脂涂料的制备及防腐性能[J]. 化工进展, 2021, 40(8): 4456-4462. |
MA Jun, SUN Dong, ZHANG Mingshuang, et al. Preparation of graphene oxide modified epoxy resin coating and research on its anti-corrosive performance[J]. Chemical Industry and Engineering Progress, 2021, 40(8): 4456-4462. | |
24 | 李俊虎, 常春, 陈群, 等. 环保型防腐颜料在涂料中的应用研究进展[J]. 化工进展, 2011, 30(S1): 217-221. |
LI Junhu, CHANG Chun, CHEN Qun, et al. Research progress and application of environment-friendly anti-rust pigments in coatings[J]. Chemical Industry and Engineering Progress, 2011, 30(S1): 217-221. | |
25 | ALEXANDER Shirin, EASTOE Julian, LORD Alex M, et al. Branched hydrocarbon low surface energy materials for superhydrophobic nanoparticle derived surfaces[J]. ACS Applied Materials & Interfaces, 2016, 8(1): 660-666. |
26 | LI Jianchao, CHEN Ping, WANG Yuan. Tribological and corrosion performance of epoxy resin composite coatings reinforced with graphene oxide and fly ash cenospheres[J]. Journal of Applied Polymer Science, 2021, 138(11): 50042. |
27 | LI Jianchao, ZHENG Lifang, SHA Xiaohua, et al. Microstructural and mechanical characteristics of graphene oxide‐fly ash cenosphere hybrid reinforced epoxy resin composites[J]. Journal of Applied Polymer Science, 2020, 137(2): 47173. |
28 | HAMMER P, DOS SANTOS F C, CERRUTTI B M, et al. Carbon nanotube-reinforced siloxane-PMMA hybrid coatings with high corrosion resistance[J]. Progress in Organic Coatings, 2013, 76(4): 601-608. |
29 | MORE Aarti P, MHASKE Shashank T. Anticorrosive coating of polyesteramide resin by functionalized ZnO-Al2O3-Fly ash composite and functionalized multiwalled carbon nanotubes[J]. Progress in Organic Coatings, 2016, 99: 240-250. |
30 | DING Rui, ZHENG Yan, YU Haibin, et al. Study of water permeation dynamics and anti-corrosion mechanism of graphene/zinc coatings[J]. Journal of Alloys and Compounds, 2018, 748: 481-495. |
31 | RUHI Gazala, BHANDARI H, DHAWAN S. Corrosion resistant polypyrrole/flyash composite coatings designed for mild steel substrate[J]. American Journal of Polymer Science, 2015, 5(1A): 18-27. |
32 | 刘娴, 沈婷, 程欢. 环氧树脂防腐涂层的研究进展[J]. 塑料科技, 2021, 49(9): 96-100. |
LIU Xian, SHEN Ting, CHENG Huan. Research progress of epoxy resin anticorrosive coatings[J]. Plastics Science and Technology, 2021, 49(9): 96-100. | |
33 | 姚久提, 魏铭, 刘晓芳, 等. 氟硅改性无溶剂环氧涂料的制备与性能[J]. 化工进展, 2021, 40(8): 4421-4427. |
YAO Jiuti, WEI Ming, LIU Xiaofang, et al. Preparation and performance of solvent-free fluorine and silicone modified epoxy coatings[J]. Chemical Industry and Engineering Progress, 2021, 40(8): 4421-4427. | |
34 | ROSTAMI M, RASOULI S, RAMEZANZADEH B, et al. Electrochemical investigation of the properties of Co doped ZnO nanoparticle as a corrosion inhibitive pigment for modifying corrosion resistance of the epoxy coating[J]. Corrosion Science, 2014, 88: 387-399. |
35 | ZIAT Younes, HAMMI Maryama, ZARHRI Zakaryaa, et al.Epoxy coating modified with graphene: A promising composite against corrosion behavior of copper surface in marine media[J]. Journal of Alloys and Compounds, 2020, 820: 153380. |
36 | FAN Weihao, WANG Huaiyuan, WANG Chijia, et al. Epoxy coating capable of providing multi-component passive film for long-term anti-corrosion of steel[J]. Applied Surface Science, 2020, 521: 146417. |
37 | WANG Zihua, WANG Chijia, FAN Weihao, et al. A novel fly ash bifunctional filler for epoxy coating with long-term anti-corrosion performance under harsh conditions[J]. Chemical Engineering Journal, 2022, 430: 133164. |
38 | LI Jianchao, CHEN Ping, WANG Yuan, et al. Corrosion resistance of surface texturing epoxy resin coatings reinforced with fly ash cenospheres and multiwalled carbon nanotubes[J]. Progress in Organic Coatings, 2021, 158: 106388. |
39 | CHEN Ping, WANG Yuan, LI Jianchao, et al. Adhesion and erosion properties of epoxy resin composite coatings reinforced with fly ash cenospheres and short glass fibers[J]. Progress in Organic Coatings, 2018, 125: 489-499. |
40 | NORFATIMA ENGKU DAHALAN Engku, HELMI SOFIAN Azizul, ABDULLAH Arman, et al. Corrosion behavior of organic epoxy-xinc coating with fly ash as an extender pigment[J]. Materials Today: Proceedings, 2018, 5(10): 21629-21635. |
41 | 井新利, 郑茂盛. 溶胶-凝胶法制备有机改性硅酸盐的研究进展[J]. 化工进展, 1997, 16(5): 39-41. |
JING Xinli, ZHENG Maosheng. Progress in ormosil through Sol-gel technique[J]. Chemical Industry and Engineering Progress, 1997, 16(5): 39-41. | |
42 | 王政芳, 罗广建, 陈海生, 等. 无机硅酸盐涂料的研制及应用[J]. 广州化学, 2014, 39(3): 1-6. |
WANG Zhengfang, LUO Guangjian, CHEN Haisheng, et al. The preparation and application of inorganic silicate coating[J]. Guangzhou Chemistry, 2014, 39(3): 1-6. | |
43 | 苏威. 无机涂料及其发展[J]. 无机盐工业, 1985, 17(8): 1-5. |
SU Wei. Inorganic coatings and their development[J]. Inorganic Salt Industry, 1985(8): 1-5. | |
44 | ARIANPOUYA N, SHISHESAZ M, ARIANPOUYA M, et al. Evaluation of synergistic effect of nanozinc/nanoclay additives on the corrosion performance of zinc-rich polyurethane nanocomposite coatings using electrochemical properties and salt spray testing[J]. Surface and Coatings Technology, 2013, 216: 199-206. |
45 | GUPTA Rainy, BHARDWAJ Pooja, MISHRA Deepti, et al. Novel non-hydroxyl synthesis and fabrication of advanced hybrid inorganic-organic geopolymeric coating material for corrosion protection[J]. International Journal of Adhesion and Adhesives, 2021, 110: 102951. |
46 | CHENG Lihong, LUO Yang, MA Shuhua, et al. Corrosion resistance of inorganic zinc-rich coating reinforced by Ni-coated coal fly ash[J]. Journal of Alloys and Compounds, 2019, 786: 791-797. |
47 | TOMAR Akshay Singh, DESHMUKH Kumud, GUPTA Rainy, et al. Studies on fly ash based geopolymeric coating material compositions incorporated with TiO2 and Fe2O3 nanoparticles for mild steel[J]. Indian Journal of Chemical Technology, 2018, 25(5): 468-474. |
48 | DESHMUKH Kumud, PARSAI Richa, ANSHUL Avneesh, et al. Studies on fly ash based geopolymeric material for coating on mild steel by paint brush technique[J]. International Journal of Adhesion and Adhesives, 2017, 75: 139-144. |
49 | 刘竞, 苗同梦, 姜子清, 等. 混凝土表层防护涂料研究进展[J]. 化工进展, 2021, 40(10): 5615-5623. |
LIU Jing, MIAO Tongmeng, JIANG Ziqing, et al. Research progress of surface protection coatings for concrete[J]. Chemical Industry and Engineering Progress, 2021, 40(10): 5615-5623. | |
50 | LIU Jie, VIPULANANDAN C. Evaluating a polymer concrete coating for protecting non-metallic underground facilities from sulfuric acid attack[J]. Tunnelling and Underground Space Technology, 2001,16(4): 311-321. |
51 | CHINDAPRASIRT Prinya, RATTANASAK Ubolluk. Improvement of durability of cement pipe with high calcium fly ash geopolymer covering[J]. Construction and Building Materials, 2016, 112: 956-961. |
52 | HARILAL Manu, GEORGE R P, ALBERT Shaju K, et al. A new ternary composite steel rebar coating for enhanced corrosion resistance in chloride environment[J]. Construction and Building Materials, 2022, 320: 126307. |
53 | ROBBY Divya Rachel, Nanda KUMAR T, HARILA Manu, et al. Enhanced corrosion protection of reinforcement steel with nanomaterial incorporated fly ash based cementitious coating[J]. Construction and Building Materials, 2021, 275: 122130. |
54 | Pradeep Kumar SOW, SINGHAL Richa, SAHOO Priyanka, et al. Fabricating low-cost, robust superhydrophobic coatings with re-entrant topology for self-cleaning, corrosion inhibition, and oil-water separation[J]. Journal of Colloid and Interface Science, 2021, 600: 358-372. |
55 | WANG Yingchun, PENG Shan, SHI Xiaomeng, et al. A fluorine-free method for fabricating multifunctional durable superhydrophobic fabrics[J]. Applied Surface Science, 2020, 505: 144621. |
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