Please wait a minute...
J Chin Soc Corr Pro  2011, Vol. 31 Issue (5): 356-361    DOI:
Research Articles Current Issue | Archive | Adv Search |
THE CORROSION INHIBITION OF ALKYL IMIDAZOLINE ON CARBON STEEL IN AMIDOSULPHURIC ACID SOLUTION
LIAO Qiangqiang1, CHEN Yaqiong1, YAN Aijun2, DONG Wantian3, GE Honghua1
1. Key Lab of Shanghai Colleges and Universities for Electric Power Corrosion Control and Applied Electro chemistry, Shanghai University of Electric Power, Shanghai Engineering Research Center of Energy-Sav-ing in Heat Exchange Systems, Shanghai Engineering Research Center of New Material for Corrosion Protection, Shanghai 200090
2. Shaanxi Electric Power Science Research Institute,Xi'an710054;
3. Shanghai Fakai Chemical Industry Co. Ltd., Shanghai 201505
Download:  PDF(1438KB) 
Export:  BibTeX | EndNote (RIS)      
Abstract  2-undecyl-N-carboxymethyl-N-hydroxyethyl imidazoline (UHCI) was investigated as a corrosion inhibitor for carbon steel in 8 mass% amidosulphuric acid solution using weight loss test, electrochemical methods and scanning electron microscopy (SEM) . The weight loss test results showed that the inhibitor was an excellent inhibitor for carbon steel in acid media with an inhibition efficiency of 90.12% and a corrosion rate of 0.6370 g/(m2• h) at the mass fraction of 0.4%. The polarization curves indicated that the inhibitor behaved as a mixed type inhibitor. The impedance spectra of carbon steel electrodes changed from one time constant into two time constants when the inhibitor added into the blank solution. The absorption of the inhibitor was found to follow the Langmuir adsorption isotherm and the mechanism was a mixture of chemisorption to physisorption. The results from SEM also give evidence of the effective inhibition of UHCI on carbon steel corrosion in amidosulphuric acid.
Key words:  carbon steel      imidazoline      EIS      polarization curve      corrosion inhibition     
Received:  07 July 2010     
ZTFLH: 

O646.1

 

Cite this article: 

LIAO Qiangqiang, CHEN Yaqiong, YAN Aijun, DONG Wantian, GE Honghua. THE CORROSION INHIBITION OF ALKYL IMIDAZOLINE ON CARBON STEEL IN AMIDOSULPHURIC ACID SOLUTION. J Chin Soc Corr Pro, 2011, 31(5): 356-361.

URL: 

https://www.jcscp.org/EN/     OR     https://www.jcscp.org/EN/Y2011/V31/I5/356

[1] Cao J Y, Chen J. Some problems needing attention in chemical cleaning of utility boilers [J].Electric Power, 2003, 36(7): 20-22

    (曹杰玉,陈洁.电厂锅炉化学清洗需注意的几个问题 [J].中国电力,2003,36(7):20-22)

[2] Zhou P, Ma Z. Optimization of passivation techniques of sodium nitrite [J]. Clean.World, 2006, 22(10), 21-23

    (周萍,马政.亚硝酸钠钝化工艺优选 [J].清洗世界,2006,22(10):21-23)

[3] Bai X P. The application of aminosulfonic acid to chemical cleaning [J]. Chem.Clean., 1996, 12(1): 26-29

    (白忻平.氨基磺酸在化学清洗中的应用 [J].化学清洗,1996,12(1):26-29)

[4] Zhang X Y, Wang F P, He Y F, et al. Study of the inhibition mechanism of imidazoline amide on CO2 corrosion of Armco iron [J]. Corros. Sci., 2001, 43(8): 1417-1431

[5] Okafor P C, Zheng Y G. Synergistic inhibition behaviour of methylbenzyl quaternary imidazoline derivative and iodide ions on mild steel in H2SO4 solutions [J]. Corros.Sci., 2009, 51(4): 850-859

[6] Zhang J, Hu S Q, Wang Y, et al. Theoretical investigation on inhibition mechanism of 1-(2-hydroxyethyl)-2-alkyl-imidazoline corrosion inhibitors [J]. Acta Chim. Sin., 2008, 66(22): 2469-2475

    (张军, 胡松青, 王勇等. 1-(2-羟乙基)-2-烷基-咪唑啉缓蚀剂缓蚀机理的理论研究 [J]. 化学学报,2008, 66(22): 2469-2475)

[7] Feng J C, Wen S Y, Zhao E R, et al. The synergism of anionic surfactant and 2-undecyl-N-carboxymethyl N-hydroxyethyl imidazoline [J]. Chin. Surf.Deterg. Cosmet., 2001, 31(1): 9-10

    (冯金城,温绍颖,赵二茹等.2-十一烷基-N-羧甲基-N-羧乙基咪唑啉与阴离子表面活性剂的协同效应 [J].日用化学工业,2001,31(1):9-10)

[8] Cao C N. Principles of Electrochemistry of Corrosion [M]. Beijing: Chemical Industry Press, 2008: 198

    (曹楚南.腐蚀电化学原理 [M].北京:化学工业出版社,2008:198)

[9] Qin B L, Zhao E R, Yang Y H, et al.Tensiometric property of 2-undecyl-1-carboxymethyl 1-hydroxyethyl imidazoline [J]. Ind.Surf., 1995, (2): 29-32

    (秦保罗,赵二茹,杨玉桓等.2-十一烷基-1-羧甲基-1-羟乙基咪唑啉的表面活性 [J].表面活性剂工业,1995,(2):29-32)

[10] Zhang D Q, Gao L X, Wang Z E. Study of inhibition effects of 2-n-undecylimidazole on copper in 3% NaCl solution [J]. J. Chin. Soc. Corros. Proct., 2002, 22(4): 237-240

     (张大全,高立新,汪知恩.NaCl溶液中烷基咪唑对铜的缓蚀作用研究 [J].中国腐蚀与防护学报,2002,22(4):237-240)

[11] Jia M Q, Yang W S. Applied Electrochemistry [M].Beijing: Higher Education Press, 2004: 339-346

     (贾梦秋,杨文胜.应用电化学 [M].北京:高等教育出版社,2004:339-346)

[12] Guo H T, Yao S W. Basis Electrochemistry and Measurement [M]. Beijing: Chemical Industry Press, 2009: 244-245

     (郭鹤桐,姚素薇.基础电化学及其测量 [M].北京:化学工业出版社,2009:244-245)

[13] Mccafferty E.On the determination of distributed double-layer capacitances from cole-cole plots [J]. Corros. Sci., 1997,39:243-254

[14] Wang F P, Kang W L, Jing H M, et al. Theory, Method and Application of Electrochemical Corrosion [M]. Beijing: Chemical Industry Press, 2008: 219

     (王凤平,康万利,敬和民等.腐蚀电化学原理、方法及应用 [M].北京:化学工业出版社,2008:219)

[15] Khaled K F,Hackerman N.Investigation of the inhibitive effect of ortho-substituted anilines on corrosion of iron in 0.5 M H2SO4 solutions [J].Mater. Chem. Phys.,2003,82:949-960

[16] Guo W J, Chen S H, Feng Y Y, et al. Investigations of triphenyl phosphate and bis-(2-ethylhexyl) phosphate self-assembled films on iron surface using electrochemical methods Fourier transform infrared spectroscopy and molecular simulations [J]. J. Phys.Chem., 2007, 111(7): 3109-3115

[17] Zhang D Q, He X M, Cai Q R, et al. Arginine self-assembled monolayers against copper corrosion and synergistic effect of iodide ion [J]. J. Appl. Electrochem.,2009, 39: 1193-1198

[18] Hong H G, Park W. A study of adsorption kinetics and thermodynamics of ω-mercaptoalkylhydroquinone self-assembled monolayer on a gold electrode [J].Electrochim. Acta, 2005, 51(4): 579-587

[19] Jin J H. University Chemistry [M]. Beijing:Chemical Industry Press, 2006: 199-202

     (金继红.大学化学 [M].北京:化学工业出版社,2006:199-202)

[20] Villamil R F V, Corio P, Rubim J C, et al. Sodium dodecylsulfate--benzotriazole synergistic effect as an inhibitor of processes on copper chloridric acid interfaces [J]. J. Electroanal.Chem., 2002, 535(1-2): 75-83

[21] Sapre K, Seal S, Jepson P, et al. Investigation into the evolution of corrosion product layer (CPL) of 1018 C-steel exposed to multiphase environment using FIB and EIS techniques [J]. Corros. Sci.,2003, 45: 59-80
[1] WANG Yating, WANG Kexu, GAO Pengxiang, LIU Ran, ZHAO Dishun, ZHAI Jianhua, QU Guanwei. Inhibition for Zn Corrosion by Starch Grafted Copolymer[J]. 中国腐蚀与防护学报, 2021, 41(1): 131-138.
[2] LU Shuang, REN Zhengbo, XIE Jinyin, LIU Lin. Investigation of Corrosion Inhitibion Behavior of 2-aminobenzothiazole and Benzotriazole on Copper Surface[J]. 中国腐蚀与防护学报, 2020, 40(6): 577-584.
[3] YUE Liangliang, MA Baoji. Effect of Ultrasonic Surface Rolling Process on Corrosion Behavior of AZ31B Mg-alloy[J]. 中国腐蚀与防护学报, 2020, 40(6): 560-568.
[4] LI Ziyun, WANG Gui, LUO Siwei, DENG Peichang, HU Jiezhen, DENG Junhao, XU Jingming. Early Corrosion Behavior of EH36 Ship Plate Steel in Tropical Marine Atmosphere[J]. 中国腐蚀与防护学报, 2020, 40(5): 463-468.
[5] HU Lulu, ZHAO Xuyang, LIU Pan, WU Fangfang, ZHANG Jianqing, LENG Wenhua, CAO Fahe. Effect of AC Electric Field and Thickness of Electrolyte Film on Corrosion Behavior of A6082-T6 Al Alloy[J]. 中国腐蚀与防护学报, 2020, 40(4): 342-350.
[6] ZHANG Chen, LU Yuan, ZHAO Jingmao. Synergistic Inhibition Effect of Imidazoline Ammonium Salt and Three Cationic Surfactants in H2S/CO2 Brine Solution[J]. 中国腐蚀与防护学报, 2020, 40(3): 237-243.
[7] SUN Shuo, YANG Jie, QIAN Xinzhu, CHANG Renli. Preparation and Electrochemical Corrosion Behavior of Electroless Plated Ni-Cr-P Alloy Coating[J]. 中国腐蚀与防护学报, 2020, 40(3): 273-280.
[8] YI Hongwei, HU Huihui, CHEN Changfeng, JIA Xiaolan, HU Lihua. Corrosion Behavior and Corrosion Inhibition of Dissimilar Metal Welds for X65 Steel in CO2-containing Environment[J]. 中国腐蚀与防护学报, 2020, 40(2): 96-104.
[9] QIN Yueqiang, ZUO Yong, SHEN Miao. Corrosion Inhibition of 316L Stainless Steel in FLiNaK-CrF3/CrF2 Redox Buffering Molten Salt System[J]. 中国腐蚀与防护学报, 2020, 40(2): 182-190.
[10] LV Xianghong,ZHANG Ye,YAN Yali,HOU Juan,LI Jian,WANG Chen. Performance Evaluation and Adsorption Behavior of Two New Mannich Base Corrosion Inhibitors[J]. 中国腐蚀与防护学报, 2020, 40(1): 31-37.
[11] Xia WANG,Shuaifei REN,Daixiong ZHANG,Huan JIANG,Yue GU. Inhibition Effect of Soybean Meal Extract on Corrosion of Q235 Steel in Hydrochloric Acid Medium[J]. 中国腐蚀与防护学报, 2019, 39(3): 267-273.
[12] Ping XU,Shuo ZHANG,Shuai SI,Yajun ZHANG,Changzheng WANG. Corrosion Mechanism of Carbon Steel Induced by Protein and Polysaccharide-the Main Components of EPS[J]. 中国腐蚀与防护学报, 2019, 39(2): 176-184.
[13] Jianguo LIU,Ge GAO,Yazhou XU,Zili LI,Wanran JI. Corrosion Inhibition Performance of Imidazoline Derivatives[J]. 中国腐蚀与防护学报, 2018, 38(6): 523-532.
[14] Xiankang ZHONG,Junying HU. Corrosion Behavior of X65 Carbon Steel in CO2Containing Liquids with Constant pH and Ferrous Ion Concentration[J]. 中国腐蚀与防护学报, 2018, 38(6): 573-578.
[15] Li WANG, Chunyun GUO, Kui XIAO, Tuerxun·Silayiding, Chaofang DONG, Xiaogang LI. Corrosion Behavior of Carbon Steels Q235 and Q450 in Dry Hot Atmosphere at Turpan District for Four Years[J]. 中国腐蚀与防护学报, 2018, 38(5): 431-437.
No Suggested Reading articles found!