|
|
含杂质超临界CO2输送管线腐蚀的研究进展 |
孙冲1,王勇1,孙建波1( ),蒋涛1,赵卫民1,张彦春2 |
2. 廊坊中油朗威工程项目管理有限公司 廊坊 065000 |
|
Investigation Progress on Corrosion Behavior of Supercr-itical CO2 Transmission Pipelines Containing Impurities in CCS |
Chong SUN1,Yong WANG1,Jianbo SUN1( ),Tao JIANG1,Weimin ZHAO1,Yanchun ZHANG2 |
1. School of Mechanical & Electronic Engineering, China University of Petroleum, Qingdao 266580, China
2. China Petroleum LONGWAY Engineering Project Management Co. Ltd., Langfang 065000, China |
引用本文:
孙冲, 王勇, 孙建波, 蒋涛, 赵卫民, 张彦春. 含杂质超临界CO2输送管线腐蚀的研究进展[J]. 中国腐蚀与防护学报, 2015, 35(5): 379-385.
Chong SUN,
Yong WANG,
Jianbo SUN,
Tao JIANG,
Weimin ZHAO,
Yanchun ZHANG.
Investigation Progress on Corrosion Behavior of Supercr-itical CO2 Transmission Pipelines Containing Impurities in CCS. Journal of Chinese Society for Corrosion and protection, 2015, 35(5): 379-385.
链接本文:
https://www.jcscp.org/CN/10.11902/1005.4537.2014.228
或
https://www.jcscp.org/CN/Y2015/V35/I5/379
|
[1] | IEA. Energy Technology Perspectives 2010, Scenarios & Strategies to 2050 (http://www.iea.org/techno/etp/etp10/English.pdf | [2] | IPCC. Carbon Dioxide Capture and Storage[M]. New York: Cambridge University Press, 2005 | [3] | Sim S, Cole I S, Bocher F, et al. Investigating the effect of salt and acid impurities in supercritical CO2 as relevant to the corrosion of carbon capture and storage pipelines[J]. Int. J. Greenh. Gas Con., 2013, 17: 534 | [4] | 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 | [5] | Dooley J J, Dahowski R T, Davidson C L. Comparing existing pipeline networks with the potential scale of future U.S. CO2 pipeline networks[J]. Energy Procedia, 2009, 1: 1595 | [6] | De Visser E, Hendriks C, Barrio M, et al. Dynamis CO2 quality recommendations[J]. Int. J. Greenh. Gas Con., 2008, 2: 478 | [7] | Eldevik F, Graver B, Torbergsen L E, et al. Development of a guideline for safe, reliable and cost efficient transmission of CO2 in pipelines[J]. Energy Procedia, 2009, 1: 1579 | [8] | Sass B M, Farzan H, Prabhakar R, et al. Considerations for treating impurities in oxy-combustion flue gas prior to sequestration[J]. Energy Procedia, 2009, 1: 535 | [9] | Cole I S, Corrigan P, Sim S, et al. Corrosion of pipelines used for CO2 transport in CCS: Is it a real problem[J]. Int. J. Greenh. Gas Con., 2011, 5: 749 | [10] | Zuo T, Liu X H, Jiang X, et al. Development of reasearch in corrosion on supercritical CO2 transportation pipelines[J]. Corros. Prot. Petrochem. Ind., 2011, 28(6): 1 (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) | [11] | Oosterkamp A, Ramsen J. State-of-the-art overview of CO2 pipeline transport with relevance to offshore pipelines [R]. Oslo: Gassco and Shell Technology Norway, Open Polytec report: POL-O-2007-138-A, 2008 | [12] | Dustad A, Halseid M. Internal corrosion in dense phase CO2 transport pipelines-state of the art and the need for further R & D [A]. Corrosion/2012 [C]. Houston, Texas: NACE, 2012, 1452 | [13] | Gale J, Davison J. Transmission of CO2-safety and economic considerations[J]. Energy, 2004, 29(10): 1319 | [14] | McGrail B P, Schaef H T, Glezakou V A, et al. Water reactivity in the liquid and supercritical CO2 phase: has half the story been neglected?[J]. Energy Procedia, 2009, 1: 3415 | [15] | Dugstad A, Morland B, Clausen S. Corrosion of transport pipelines for CO2 -effect of water ingress[J]. Energy Procedia, 2011, 4: 3063 | [16] | Choi Y S, Nesic S. Effect of impurities on the corrosion behavior of carbon steel in supercritical CO2-water environments [A]. Corrosion/2010 [C]. Houston, Texas: NACE, 2010, 10196 | [17] | Ayello F, Evans K, Thodla R, et al. Effect of impurities on corrosion of steel in supercritical CO2 [A]. Corrosion/2010 [C]. Houston, Texas: NACE, 2010, 10193 | [18] | Choi Y S, Nesic S. Effect of water content on the corrosion behavior of carbon steel in supercritical CO2 phase with impurities [A]. Corrosion/ 2011 [C]. Houston, Texas: NACE, 2011, 11377 | [19] | Xiang Y, Wang Z, Xu C, et al. Impact of SO2 concentration on the corrosion rate of X70 steel and iron in water-saturated supercritical CO2 mixed with SO2[J]. J. Supercrit. Fluid., 2011, 58: 286 | [20] | Dugstad A, Halseid M, Morland B. Effect of SO2 and NO2 on corrosion and solid formation in dense phase CO2 pipelines[J]. Energy Procedia, 2013, 37: 2877 | [21] | Xiang Y, Wang Z, Yang X X, et al. The upper limit of moisture content for supercritical CO2 pipeline transport[J]. J. Supercrit. Fluid., 2012, 67: 14 | [22] | Ruhl A S, Kranzmann A. Corrosion behavior of various steels in a continuous flow of carbon dioxide containing impurities[J]. Int. J. Greenh. Gas Con., 2012, 9: 85 | [23] | Thodla R, Francois A, Sridhar N. Materials performance in supercritical CO2 environments [A]. Corrosion/2009 [C]. Houston, Texas: NACE, 2009, 09255 | [24] | Cole I S, Paterson D, Corrigan P, et al. State of the aqueous phase in liquid and supercritical CO2 as relevant to CCS pipelines[J]. Int. J. Greenh. Gas Con., 2012, 7: 82 | [25] | Dugstad A, Halseid M, Morland B, et al. Corrosion in dense phase CO2-the impact of depressurisation and accumulation of impurities[J]. Energy Procedia, 2013, 37: 3057 | [26] | Kladlaew N, Idem R, Tontiwachwuthikul P, et al. Studies on corrosion and corrosion inhibitors for amine based solvents for CO2 absorption from power plants flue gases containing CO2, O2 and SO2[J]. Energy Procedia, 2011, 4: 1761 | [27] | Ruhl A S N,Kranzmann A. Investigation of pipeline corrosion in pressurized CO2 containing impurities [J]. Energy Procedia, 2013, 37: 3131 | [28] | Dugstad A, Morland B, Clausen S. Transport of dense phase CO2 in C-steel pipelines-when is corrosion an issue [A]. Corrosion/2011 [C]. Houston, Texas: NACE, 2011, 11070 | [29] | Farelas F, Choi Y S, Nesic S. Effects of CO2 phase change, SO2 content and flow on the corrosion of CO2 transmission pipeline steel [A]. Corrosion/2012 [C]. Houston, Texas: NACE, 2012, 1322 | [30] | Xiang Y, Wang Z, Xu M H, et al. A mechanistic model for pipeline steel corrosion in supercritical CO2-SO2-O2-H2O environments[J]. J. Supercrit. Fluid., 2013, 82: 1 | [31] | Graedel T E. Gildes model studies of aqueous chemistry. I. Formulation and potential applications of the multi-regime model[J]. Corros. Sci., 1996, 38(12): 2153 | [33] | Ruhl A S, Kranzmann A. Investigation of corrosive effects of sulphur dioxide, oxygen and water vapour on pipeline steels[J]. Int. J. Greenh. Gas Con., 2013, 13: 9 |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|