Reusing abandoned natural gas storage sites for compressed air energy storage

被引:3
|
作者
Amirlatifi, Amin [1 ]
Vahedifard, Farshid [2 ]
Degtyareva, Maria [3 ]
Turner, Richard N. [4 ]
Sullivan, Brian [5 ]
Santra, Ritabrata [6 ]
Esposito, Richard A. [7 ]
机构
[1] Mississippi State Univ, Swalm Sch Chem Engn, Chem & Petr Engn, Mississippi State, MS USA
[2] Mississippi State Univ, Dept Civil & Environm Engn, Mississippi State, MS 39762 USA
[3] Mississippi State Univ, Sch Architecture, Mississippi State, MS USA
[4] Mississippi State Univ, Natl Strateg Planning & Anal Res Ctr, Starkville, MS USA
[5] Entergy, Jackson, MS USA
[6] Mississippi State Univ, Swalm Sch Chem Engn, Petr Engn, Mississippi State, MS USA
[7] Southern Co Serv, Carbon Storage & Utilizat, Geosci, Birmingham, AL USA
来源
ENVIRONMENTAL GEOTECHNICS | 2021年 / 8卷 / 01期
关键词
energy; geotechnical engineering; sustainable development; RENEWABLE ENERGY; DEMAND RESPONSE; THERMODYNAMIC ANALYSIS; SYSTEMS; PERFORMANCE; FATIGUE; BATTERY; SIMULATION; EVOLUTION; PLANT;
D O I
10.1680/jenge.18.00035
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
This study aims to investigate the feasibility of reusing uneconomical or abandoned natural gas storage (NGS) sites for compressed air energy storage (CAES) purposes. CAES is recognised as a viable means of high-capacity short- to mid-term energy storage. However, the widespread implementation of CAES is limited to geological and geographical settings and requires substantial infrastructure and capital investment. Utility-scale CAES requires a suitable trap that can contain compressed air without significant loss or leakage. Reusing of existing NGS systems and converting them into CAES can reduce the costs of exploration, geomechanical risk assessment and drilling into the trap, as well as the infrastructure cost, compressors and inter/after coolers. The cost, therefore, would be limited to acquirement of the site and installation of turbines, recuperators and transmission lines. The present study compares the net stacked benefit of converting NGS sites into CAES against that of conventional energy storage and development of CAES from the ground up. While site-specific economic analyses and technological viability are needed prior to large-scale implementation, results of this feasibility study suggest that reusing NGS sites for CAES has the potential to offer a cost-effective alternative for utility-scale energy storage.
引用
收藏
页码:55 / 68
页数:14
相关论文
共 50 条
  • [21] Impact of compressed air energy storage demands on gas turbine performance
    Igie, Uyioghosa
    Abbondanza, Marco
    Szymanski, Artur
    Nikolaidis, Theoklis
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART A-JOURNAL OF POWER AND ENERGY, 2021, 235 (04) : 850 - 865
  • [22] Synergizing compressed air energy storage and liquefied natural gas regasification in a power-to-biofuels plant
    Ghiasirad, Hamed
    Gholizadeh, Towhid
    Ochmann, Jakub
    Jurczyk, Michal
    Bartela, Lukasz
    Skorek-Osikowska, Anna
    [J]. ENERGY, 2024, 308
  • [23] Performance analysis of compressed air energy storage systems considering dynamic characteristics of compressed air storage
    Guo, Cong
    Xu, Yujie
    Zhang, Xinjing
    Guo, Huan
    Zhou, Xuezhi
    Liu, Chang
    Qin, Wei
    Li, Wen
    Dou, Binlin
    Chen, Haisheng
    [J]. ENERGY, 2017, 135 : 876 - 888
  • [24] REGULATORY FRAMEWORK BENCHMARK FOR ENERGY STORAGE: THE CASE OF COMPRESSED AIR ENERGY STORAGE
    Matos, Catarina R.
    Silva, Patricia P.
    Carneiro, Julio F.
    [J]. PROCEEDINGS OF THE 4TH INTERNATIONAL CONFERENCE ON ENERGY & ENVIRONMENT (ICEE 2019): BRINGING TOGETHER ENGINEERING AND ECONOMICS, 2019, : 451 - 461
  • [25] Design of thermal energy storage unit for Compressed Air Energy Storage system
    Szybiak, Maciej
    Jaworski, Maciej
    [J]. 17TH INTERNATIONAL CONFERENCE HEAT TRANSFER AND RENEWABLE SOURCES OF ENERGY (HTRSE-2018), 2018, 70
  • [26] The thermodynamic effect of thermal energy storage on compressed air energy storage system
    Zhang, Yuan
    Yang, Ke
    Li, Xuemei
    Xu, Jianzhong
    [J]. RENEWABLE ENERGY, 2013, 50 : 227 - 235
  • [27] Experimental study of compressed air energy storage system with thermal energy storage
    Wang, Sixian
    Zhang, Xuelin
    Yang, Luwei
    Zhou, Yuan
    Wang, Junjie
    [J]. ENERGY, 2016, 103 : 182 - 191
  • [28] Overview of compressed air energy storage projects and regulatory framework for energy storage
    Matos, Catarina R.
    Silva, Patricia P.
    Carneiro, Julio F.
    [J]. JOURNAL OF ENERGY STORAGE, 2022, 55
  • [29] More effective compressed natural gas storage
    Canter, Neil
    [J]. TRIBOLOGY & LUBRICATION TECHNOLOGY, 2014, 70 (01) : 12 - 13
  • [30] Adiabatic Compressed Air Energy Storage with packed bed thermal energy storage
    Barbour, Edward
    Mignard, Dimitri
    Ding, Yulong
    Li, Yongliang
    [J]. APPLIED ENERGY, 2015, 155 : 804 - 815