Comparing Existing Pipeline Networks with the Potential Scale of Future US CO2 Pipeline Networks

被引:47
|
作者
Dooley, J. J. [1 ]
Dahowski, R. T. [2 ]
Davidson, C. L. [2 ]
机构
[1] Pacific Northwest Natl Lab, Joint Global Change Res Inst, 8400 Baltimore Ave,Suite 201, College Pk, MD 20740 USA
[2] Pacific Northwest Natl Lab, Energy & Engn Directorate, Richland, WA 99352 USA
来源
关键词
carbon dioxide capture and storage; pipelines; carbon management; climate change;
D O I
10.1016/j.egypro.2009.01.209
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Interest is growing regarding the potential size of a future U.S.-dedicated carbon dioxide (CO2) pipeline infrastructure if carbon dioxide capture and storage (CCS) technologies are commercially deployed on a large scale within the United States. This paper assesses the potential scale of the CO2 pipeline system needed under two hypothetical climate policies (WRE450 and WRE550 stabilization scenarios); a comparison is then made to the extant U. S. pipeline infrastructures used to deliver CO2 for enhanced oil recovery and to move natural gas and liquid hydrocarbons from areas of production and importation to markets. The analysis reveals that between 11,000 and 23,000 additional miles of dedicated CO2 pipeline might be needed in the United States before 2050 across these two cases. While either case represents a significant increase over the 3900 miles that comprise the existing national CO2 pipeline infrastructure, it is important to realize that the demand for additional CO2 pipeline capacity will unfold relatively slowly and in a geographically dispersed manner as new dedicated CCS-enabled power plants and industrial facilities are brought online. During the period 2010-2030, this analysis indicates growth in the CO2 pipeline system on the order of a few hundred to less than 1000 miles per year. By comparison, during the period 1950-2000, the U.S. natural gas pipeline distribution system grew at rates that far exceed these growth projections for a future CO2 pipeline network in the U.S. This analysis indicates that the need to increase the size of the existing dedicated CO2 pipeline system should not be seen as a major obstacle for the commercial deployment of CCS technologies in the United States. While there could be issues associated with siting specific segments of a larger national CO2 pipeline infrastructure, the sheer scale of the required infrastructure should not be seen as representing a significant impediment to U.S. deployment of CCS technologies. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1595 / 1602
页数:8
相关论文
共 50 条
  • [21] Optimization of pipeline transport for CO2 sequestration
    Zhang, ZX
    Wang, GX
    Massarotto, P
    Rudolph, V
    ENERGY CONVERSION AND MANAGEMENT, 2006, 47 (06) : 702 - 715
  • [22] Inhibitors for wet CO2 pipeline service
    不详
    MATERIALS PERFORMANCE, 2015, 54 (05) : 10 - 11
  • [23] Improved cost models for optimizing CO2 pipeline configuration for point-to-point pipelines and simple networks
    Knoope, M. M. J.
    Guijt, W.
    Ramirez, A.
    Faaij, A. P. C.
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2014, 22 : 25 - 46
  • [24] Effects of pipeline distance, injectivity and capacity on CO2 pipeline and storage site selection
    Wang, Z.
    Weihs, G. A. Fimbres
    Neal, P. R.
    Wiley, D. E.
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2016, 51 : 95 - 105
  • [25] Correlative comparison of gas CO2 pipeline transportation and natural gas pipeline transportation
    Zhang, Yindi (zhangyindihust@foxmail.com), 1600, AMSE Press, 16 Avenue Grauge Blanche, Tassin-la-Demi-Lune, 69160, France (86):
  • [26] Pressure response and phase transition in process of CO2 pipeline release in industrial scale
    Yu, Jianliang
    Guo, Xiaolu
    Yan, Xingqing
    Zhang, Yongchun
    Chen, Shaoyun
    Huagong Xuebao/CIESC Journal, 2015, 66 (11): : 4327 - 4334
  • [27] A POWERFUL IMPROVEMENT ON THE METHODOLOGY FOR SOLVING LARGE-SCALE PIPELINE NETWORKS
    MARTINEZBENET, JM
    PUIGJANER, L
    COMPUTERS & CHEMICAL ENGINEERING, 1988, 12 (2-3) : 261 - 265
  • [28] CO2 pipeline integrity: A new evaluation methodology
    Berstad, T.
    Dorum, C.
    Jakobsen, J. P.
    Kragset, S.
    Li, H.
    Lund, H.
    Morin, A.
    Munkejord, S. T.
    Molnvik, M. J.
    Nordhagen, H. O.
    Ostby, E.
    10TH INTERNATIONAL CONFERENCE ON GREENHOUSE GAS CONTROL TECHNOLOGIES, 2011, 4 : 3000 - 3007
  • [29] Economic evaluation of CO2 pipeline transport in China
    Zhang, Dongjie
    Wang, Zhe
    Sun, Jining
    Zhang, Lili
    Li, Zheng
    ENERGY CONVERSION AND MANAGEMENT, 2012, 55 : 127 - 135
  • [30] Property impacts on performance of CO2 pipeline transport
    Tan, Yuting
    Nookuea, Worrada
    Li, Hailong
    Thorin, Eva
    Zhao, Li
    Yan, Jinyue
    CLEAN, EFFICIENT AND AFFORDABLE ENERGY FOR A SUSTAINABLE FUTURE, 2015, 75 : 2261 - 2267