The influence of stratum water composition on steel corrosion and the protective effect of the inhibitor in the presence of H2S and CO2

被引:1
作者
Tsygankova, L. E. [1 ]
Vagapov, R. K. [2 ]
Abramov, A. E. [1 ]
Semenyuk, T. V. [1 ]
Igonina, V. A. [1 ]
Isaeva, L. E. [1 ]
机构
[1] Derzhavin State Univ, Ul Internatsyonalnaya 33, Tambov 392000, Russia
[2] Gazprom VNIIGAZ LLC, Proektiruemyi Proezd 5537,15 1,S p Razvilkovskoe, Razvilka 142717, Moscow, Russia
来源
INTERNATIONAL JOURNAL OF CORROSION AND SCALE INHIBITION | 2024年 / 13卷 / 01期
关键词
steel; corrosion; formation water; hydrogen sulfide; carbon dioxide; protection; inhibitory composition; corrosion products; X65; CARBON-STEEL; UNIFORM CORROSION; PIPELINE STEEL; HYDROGEN; PERMEATION; SULFIDE; IRON;
D O I
10.17675/2305-6894-2024-13-1-29
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Corrosion of St3 steel and protective effectiveness of an inhibitory composition (25-200 mg/l), which is a solution of nitrogen -containing compounds (polyamines) in a mixture of organic solvents, were studied in model stratum waters MW1 and MW2, differing in the degree of mineralization, saturated with H2S and CO2 and containing 0.25 mg/L CH3COOH. Gravimetric methods have shown that the corrosion rate of steel in less mineralized MW1 environments is higher than in MW2 environments under static conditions both at room temperature and 80degree celsius, and in stirred solutions in the presence of a hydrocarbon phase. The protective effectiveness of the inhibitory composition in the presence of H2S in solution is higher in MW1, and in the presence of H2S and CO2, in contrast, in MW2 at room temperature and 80degree celsius. The presence of H2S and CO2 in the solution contributes to a higher protective effectiveness of the inhibitory composition in both stratum waters (Z= 90%) than in the presence of H2S (Z= 60-70%), both at room temperature and 80degree celsius. Under dynamic conditions at 10% hydrocarbon phase content, its value exceeds 90%. The influence of acetic acid present in the solution is discussed. The impedance spectroscopy method made it possible to evaluate the adsorption of the components of the inhibitory composition. This made it possible to calculate the surface coverage with an inhibitor, to determine the type of adsorption isotherm, and to calculate the adsorption free energy.
引用
收藏
页码:583 / 601
页数:19
相关论文
共 35 条
[1]   The Effect of the Partial Pressure of H2S and CO2 on the Permeation of Hydrogen in Carbon Steel by Using Pressure Buildup Techniques [J].
Alanazi, Nayef M. ;
Al-Enezi, Abdullah A. .
CORROSION, 2019, 75 (10) :1207-1215
[2]  
Baydin I.I., 2018, IZV VYSSH UCHEBN ZAV, P41, DOI [10.31660/0445-0108-2018-6-41-44, DOI 10.31660/0445-0108-2018-6-41-44]
[3]   Comparison of corrosion scales formed on KO8OSS and N8O steels in CO2/H2S environment [J].
Dong, S. J. ;
Zhou, G. S. ;
Li, X. X. ;
Ouyang, S. ;
An, H. F. .
CORROSION ENGINEERING SCIENCE AND TECHNOLOGY, 2011, 46 (06) :692-696
[4]   Investigation of carbon dioxide corrosion of mild steel in the presence of acetic acid - Part 1: Basic mechanisms [J].
George, K. S. ;
Nesic, S. .
CORROSION, 2007, 63 (02) :178-186
[5]  
Ivanov E.S., 2009, Theory and Practice of Corrosion Protection, V53, P8
[6]   Assessment of the Effect of Operating Conditions on the Resistance of Steels Used in H2S-Containing Environments at Hydrocarbon Production Facilities [J].
Kantyukov, R. R. ;
Zapevalov, D. N. ;
Vagapov, R. K. .
METALLURGIST, 2022, 65 (11-12) :1369-1380
[7]   Hydrogen induced cracking (HIC) testing of low alloy steel in sour environment: Impact of time of exposure on the extent of damage [J].
Kittel, Jean ;
Smanio, Veronique ;
Fregonese, Marion ;
Garnier, Laurence ;
Lefebvre, Xavier .
CORROSION SCIENCE, 2010, 52 (04) :1386-1392
[8]  
Kolotyrkin Ya.M., 1967, Zashch. Met, V3, P131
[9]  
Koshelev A.V., 2014, Vesti Gazovoy Nauki, V19, P106
[10]   Corrosion behavior of low alloy steel used for new pipeline exposed to H2S-saturated solution [J].
Liu, Zhenguang ;
Wang, Yiming ;
Zhai, Yangdong ;
Qiao, Yanxin ;
Zheng, Chuanbo ;
Wang, Dongpeng ;
Shi, Xingling ;
Lu, Huihu ;
Liu, Chuan .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (77) :33000-33013