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X70钢输送气态和超临界状态CO2时的腐蚀行为研究 |
蒋秀( ),宋晓良,屈定荣,刘小辉 |
中国石油化工股份有限公司青岛安全工程研究院 青岛 266071 |
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Corrosion Behavior of X70 Mild Steel during Transportation of Gaseous- and Supercritical-CO2 Fluids |
Xiu JIANG( ),Xiaoliang SONG,Dingrong QU,Xiaohui LIU |
SINOPEC Research Institute of Safety Engineering, Qingdao 266071, China |
引用本文:
蒋秀,宋晓良,屈定荣,刘小辉. X70钢输送气态和超临界状态CO2时的腐蚀行为研究[J]. 中国腐蚀与防护学报, 2016, 36(3): 225-230.
Xiu JIANG,
Xiaoliang SONG,
Dingrong QU,
Xiaohui LIU.
Corrosion Behavior of X70 Mild Steel during Transportation of Gaseous- and Supercritical-CO2 Fluids. Journal of Chinese Society for Corrosion and protection, 2016, 36(3): 225-230.
链接本文:
https://www.jcscp.org/CN/10.11902/1005.4537.2015.120
或
https://www.jcscp.org/CN/Y2016/V36/I3/225
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[1] | Lone S, Cockerill T, Macchietto S.The techno-economics of a phased approach to developing a UK carbon dioxide pipeline network[J]. J. Pipeline. Eng., 2010, 11(3): 223 | [2] | Sandana D, Hadden M, Race J, et al.Transport of gaseous and dense carbon dioxide in pipelines: Is there an internal corrosion risk[J]. J. Pipeline. Eng., 2012, 11(3): 229 | [3] | Waard C D, Milliams D E.Carbonic acid corrosion of steel[J]. Corrosion, 1975, 31(5): 177 | [4] | Nesic S.Key issues related to modeling of internal corrosion of oil and gas pipelines-A review[J]. Corros. Sci., 2007, 49: 4308 | [5] | Gao K W, Yu F, Pang X L, et al.Mechanical properties of CO2 corrosion product scales and their relationship to corrosion rates[J]. Corros. Sci., 2008, 50(10): 2796 | [6] | Zuo T, Liu X H, Jiang X, et al.Development of research in corrosion on supercritical CO2 transportation pipelines[J]. Petrochem. Corros. Prot., 2011, 28(6): 1 | [6] | (左甜, 刘小辉, 蒋秀等. 超临界CO2输送管道的腐蚀研究进展[J]. 石油化工腐蚀与防护, 2011, 28(6): 1) | [7] | Jiang X, Qu D R, Liu X H.Supercritical CO2 pipeline transportation and safety[J]. Oil Gas Storage Transp., 2013, 32(8): 809 | [7] | (蒋秀, 屈定荣, 刘小辉. 超临界CO2管道输送与安全[J]. 油气储运, 2013, 32(8): 809) | [8] | Evans W C, Kling G W, Tuttle M L, et al.Gas buildup in lake Nyos, camernoon: The recharge process and its consequences [J]. Appl. Geochem., 1993, 8: 207 | [9] | Seiersten M.Materials selection for separation, transportation and disposal of CO2 [A]. Corrosion/01[C]. Houston: NACE, 2001 | [10] | Jiang X, Song X L, Zhang Y L, et al.Impact of CO2 transportation technology on the corrosion of X65 pipeline steel [A]. Proceedings of CIPC 2013 China International Oil & Gas Pipeline Conference[C]. Langfang, 2013: 41 | [10] | (蒋秀, 宋晓良, 张艳玲等. CO2输送工艺对X65管道腐蚀的影响[A]. Proceedings of CIPC 2013 China International Oil & Gas Pipeline Conference[C]. 廊坊: 2013: 41) | [11] | Jiang X, Qu D R, Song X L, et al.Impact of water content on corrosion behavior of CO2 transportation pipeline [A]. Corrosion/15[C]. Houston: NACE, 2015 | [12] | Xiang Y, Wang Z, Yang X, et al.The upper limit of moisture content for supercritical CO2 pipeline transport[J]. J. Supercrit. Fluid., 2012, 67: 14 | [13] | Spycher N, Pruess K, Ennis-King J.CO2-H2O mixtures in the geological sequestration of CO2. I. Assessment and calculation of mutual solubilities from 12 to 100 ℃ and up to 600 bar[J]. Geochim. Cosmochim. Acta, 2003, 67(16): 3015 | [14] | Choi Y S, Nesic S.Determining the corrosive potential of CO2 transport pipeline in high pCO2-water environments[J]. Int. J. Greenh. Gas Con., 2011, 5: 788 | [15] | Hua Y, Barker R, Neville A.Comparison of corrosion behavior for X-65 carbon steel in supercritical CO2-saturated water and water-saturated/unsaturated supercritical CO2[J]. J. Supercrit. Fluid., 2015, 97: 224 | [16] | Choi Y S, Nesic S, Young D.Effect of impurities on the corrosion behavior of CO2 transmission pipeline steel in supercritical CO2-water environments[J]. Environ. Sci. Technol., 2010, 44(23): 9233 |
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