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Corrosion Engineering, Science and Technology
The International Journal of Corrosion Processes and Corrosion Control
Volume 58, 2023 - Issue 4
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Research Articles

Localised corrosion failure of an L245N pipeline in a CO2–O2–Cl environment

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Pages 372-383 | Received 03 Nov 2022, Accepted 04 Mar 2023, Published online: 16 Mar 2023

References

  • Zhang SH, Hou LF, Wei H, et al. Failure analysis of an oil pipe wall perforated by pitting corrosion. Mater Corros. 2017;69(8):1123–1130.
  • Luo SJ, Liu M, Lin XZ. Corrosion fatigue behavior of S135 high-strength drill pipe steel in a simulated marine environment. Mater Corros. 2018;70(4):688–697.
  • He GX, He TJ, Liao KX, et al. Experimental and numerical analysis of non-contact magnetic detecting signal of girth welds on steel pipelines. ISA T. 2022;125:681–698.
  • He GX, He TJ, Liao KX, et al. A novel three-dimensional non-contact magnetic stress inspection technology and its application on LNG pipeline. Proc Bienn Int Pipeline Conf IPC. 2020;3:1–8.
  • Dong BJ, Liu W, Zhang TY, et al. Corrosion failure analysis of low alloy steel and carbon steel rebar in tropical marine atmospheric environment: outdoor exposure and indoor test. Eng Fail Anal. 2021;129:105720.
  • Wright RF, Brand ER, Ziomek-Moroz M, et al. Effect of HCO3- on electrochemical kinetics of carbon steel corrosion in CO2-saturated brines. Electrochim Acta. 2018;290:626–638.
  • Zhang SH, Hou LF, Du HY, et al. A study on the interaction between chloride ions and CO2 towards carbon steel corrosion. Corros Sci. 2020;167:108531.
  • Jang CB, Choi SW, Baek JB. CFD modeling and fire damage analysis of jet fire on hydrogen pipeline in a pipe rack structure. Int J Hydrogen Energ. 2015;40(45):15760–15772.
  • Du Y, Ma L, Zheng JY, et al. Consequences prediction and analysis of pipe explosion considering fluid-structure interaction. J Zhejiang Univ. 2017;51(3):429–435.
  • Sun FG, Yao YD, Li XF, et al. A numerical approach for obtaining type curves of superheated multi-component thermal fluid flow in concentric dual-tubing wells. Int J Heat Mass Tran. 2017;111:41–53.
  • Zhao S, Liao KX, Zhou FL, et al. Effect of temperature on the corrosion behavior of L245NS steel in a CO2/H2S/O2 multi-component thermal fluid collection and transportation system. Arab J Sci Eng. 2022;47:11223–11237.
  • Javidi M, Bekhrad S. Failure analysis of a wet gas pipeline due to localised CO2 corrosion. Eng Fail Anal. 2018;89:46–56.
  • Kahyarian A, Singer M, Nešić S. Modeling of uniform CO2 corrosion of mild steel in gas transportation systems: a review. J Nat Gas Sci Eng. 2016;29:530–549.
  • De Warrd C, Lotz U, Milliams DE. Predictive model for CO2 corrosion engineering in wet natural gas pipelines. Corrosion. 1991;47(12):976–985.
  • Li W, Pots BFM, Zhong XK, et al. Inhibition of CO2 corrosion of mild steel-steel of mechanical effects of highly turbulent disturbed flow. Corros Sci. 2017;126:208–226.
  • Yin ZF, Feng YR, Zhao WZ, et al. Effect of temperature on CO2 corrosion of carbon steel. Surf Interface Anal. 2009;41(6):517–523.
  • Schmitt G. Fundamental aspects of CO2 metal loss corrosion – Part II: influence of different parameters on CO2 corrosion mechanism. CORROSION 2015 (Dallas, Texas, US). NACE 2015;6033.
  • Nesic S. Effects of multiphase flow on internal CO2 corrosion of mild steel pipelines. Energ Fuel. 2012;26(7):4098–4111.
  • Honarvar Nazari M, Allahkaram SR, Kermani MB, et al. The effects of temperature and pH on the characteristics of corrosion product in CO2 corrosion of grade X70 steel. Mater Des. 2010;31(7):3559–3563.
  • Eliyan FF, Alfantazi A. Electrochemical investigations on the corrosion behavior and corrosion natural inhibition of API-X100 pipeline steel in acetic acid and chloride containing CO2-saturated media. J Appl Electrochem. 2012;42(4):233–248.
  • Rosli NR, Nešić S, Choi YS, et al. Corrosion of UNS G10180 steel in supercritical and subcritical CO2 with O2 as a contaminant, CORROSION 2016 (Vancouver, British Columbia, Can). NACE 2016;7527.
  • Qu Q, Ma J, Wang L, et al. Corrosion behaviour of AZ31B magnesium alloy in NaCl solutions saturated with CO2. Corros Sci. 2011;53(4):1186–1193.
  • Yue XQ, Ren YQ, Huang LY, et al. The role of Cl− in the formation of the corrosion products and localised corrosion of 15Cr martensite stainless steel under an CO2-containing extreme oilfield condition. Corros Sci. 2022;194:109935.
  • Liao KX, Leng JH, Huang Q, et al. The effect of acetic acid on the localized corrosion of 3Cr steel in the CO2-saturated oilfield formation water. Int J Electrochem Sci. 2020;15:8622–8637.
  • Chen CF, Lu MX, Sun DB, et al. Effect of chromium on the pitting resistance of oil tube steel in a carbon dioxide corrosion system. Corrosion. 2005;61(6):594–601.
  • Liu QY, Mao LJ, Zhou SW. Effects of chloride content on CO2 corrosion of carbon steel in simulated oil and gas well environments. Corros Sci. 2014;84:165–171.
  • Zhao S, Liao KX, Wang XY, et al. Corrosion behavior of 35CrMo steel in a CO2-O2-Cl− coexistent simulating environment of fire-drive tail gas. Mater Chem Phys. 2021;272(1):125016–125028.
  • Liao KX, Qin M, He GX, et al. Study on corrosion mechanism and the risk of the shale gas gathering pipelines. Eng Fail Anal. 2021;128(5):105622.
  • Choi YS, Nešić S, Young D. Effect of impurities on the corrosion behavior of CO2 transmission pipeline steel in supercritical CO2-water environments. Environ Sci Technol. 2010;44(23):9233–9238.
  • Lin XQ, Li W, Wu F, et al. Effect of O2 on corrosion of 3Cr in high temperature and high pressure CO2-O2 environment. Appl Surf Sci. 2015;329:104–115.
  • Lim TH, Hwang ER, Ha HY, et al. Effects of temperature and partial pressure of CO2/O2 on corrosion behaviour of stainless-steel in molten Li/Na carbonate salt. J Power Sources. 2000;89(1):1–6.
  • Sun H, Wu XQ, Han EH, et al. Effects of pH and dissolved oxygen on electrochemical behavior and oxide films of 304SS in borated and lithiated high temperature water. Corros Sci. 2012;59:334–342.
  • Luo SJ, Fu AQ, Liu M, et al. Stress corrosion cracking behavior and mechanism of super 13Cr stainless steel in simulated O2/CO2 containing 3.5 wt% NaCl solution. Eng Fail Anal. 2021;130:105748.
  • Liu W, Wu F, Dou JJ, et al. Effect of Cl− concentration on erosion-corrosion behavior of S43400 and S31603 stainless steels in high temperature and high pressure CO2-O2 environment. CORROSION 2015 (Dallas, Texas, US). NACE 2015;5973.
  • Leng JH, Frank Cheng Y, Liao KX, et al. Synergistic effect of O2-Cl− on localized corrosion failure of L245N pipeline in CO2-O2-Cl− environment. Eng Fail Anal. 2022;138:106332.
  • ASTM Committee G-1 on corrosion of metals, standard practice for preparing, cleaning, and evaluating corrosion test specimens. ASTM International. 2011.
  • Li KY, Zeng YM, Luo JL. Corrosion of SS310 and alloy 740 in high temperature supercritical CO2 with impurities H2O and O2. Corros Sci. 2021;184:109350.
  • Wei L, Pang XL, Gao KW. Effect of flow rate on localized corrosion of X70 steel in supercritical CO2 environments. Corros Sci. 2018;136:339–351.
  • Zhong XK, Wang YR, Liang JJ, et al. The coupling effect of O2 and H2S on the corrosion of G20 steel in a simulating environment of flue gas injection in the Xinjiang oil field. Materials (Basel). 2018;11(9):1635.
  • Keddam M, Mottos OR, Takenouti H. Reaction model for iron dissolution studied by electrode impedance: I. Experimental results and reaction model. J Electrochem Soc. 1981;128(2):257–266.
  • Cole IS, Corrigan P, Sim S, et al. Corrosion of pipelines used for CO2 transport in CCS: Is it a real problem? Int J Greenh Gas Control. 2011;5(4):749–756.
  • Wei L, Pang XL, Liu C, et al. Formation mechanism and protective property of corrosion product scale on X70 steel under supercritical CO2 environment. Corros Sci. 2015;100:404–420.
  • Nešić S. Key issues related to modelling of internal corrosion of oil and gas pipelines – a review. Corros Sci. 2007;49(12):4308–4338.
  • MacFarlane DR, Smedley SI. The dissolution mechanism of iron in chloride solutions. J Electrochem Soc. 1986;133:2240–2244.
  • Kladkaew N, Idem R, Tontiwachwuthikul P, et al. Studies on corrosion and corrosion inhibitors for amine based solvents for CO2 absorption from power plant flue gases containing CO2, O2 and SO2. Energy Procedia. 2011;4:1761–1768.
  • Craig BD. The nature of iron sulfides formed on steel in an H2S-O2 environment. Corrosion. 1979;35(3):136–138.

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