Influence of Storage Period on the Geochemical Evolution of a Compressed Energy Storage System

被引:6
|
作者
Iloejesi, Chidera O. [1 ]
Beckingham, Lauren E. [1 ]
机构
[1] Auburn Univ, Dept Civil & Environm Engn, Auburn, AL 36849 USA
来源
FRONTIERS IN WATER | 2021年 / 3卷
关键词
energy storage; CO2; sequestration; porous saline aquifer; reactive transport simulation; geochemical reactions; RENEWABLE PORTFOLIO STANDARDS; CARBON-DIOXIDE; EMPIRICAL-EVIDENCE; ROCK INTERACTIONS; HYDROGEN STORAGE; CUSHION GAS; CO2; DISSOLUTION; SEQUESTRATION; SANDSTONE;
D O I
10.3389/frwa.2021.689404
中图分类号
TV21 [水资源调查与水利规划];
学科分类号
081501 ;
摘要
Subsurface porous aquifers are being considered for use as reservoirs for compressed energy storage of renewable energy. In these systems, a gas is injected during times in which production exceeds demand and extracted for energy generation during periods of peak demand or scarcity in production. Current operational subsurface energy facilities use salt caverns for storage and air as the working gas. CO2 is potentially a more favorable choice of working gas where under storage conditions CO2 has high compressibility which can improve operational efficiency. However, the interaction of CO2 and brine at the boundary of the storage zone can produce a chemically active fluid which can result in mineral dissolution and precipitation reactions and alter the properties of the storage zone. This study seeks to understand the geochemical implications of utilization of CO2 as a working gas during injection, storage and extraction flow cycles. Here, reactive transport simulations are developed based on 7 h of injection, 11 h of withdrawal and 6 h of reservoir closure, corresponding to the schedule of the Pittsfield field test, for 15 years of operational life span to assess the geochemical evolution of the reservoir. The evolution in the storage system is compared to a continuously cyclic system of 12 h injection and extraction. The result of the study on operational schedule show that mineral reactivity occurs at the inlet of the domain. Furthermore, the porosity of the inner domain is preserved during the cycling of CO2 acidified brine for both systems.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] PERFORMANCE OF A WATER COMPENSATED COMPRESSED AIR ENERGY STORAGE SYSTEM
    Arnulfi, Gianmario L.
    Marini, Martino
    PROCEEDINGS OF THE ASME TURBO EXPO 2008, VOL 2, 2008, : 577 - 587
  • [42] Performance analysis on a Compressed Humid Air Energy Storage System
    Zhang, Huisheng
    Zhou, Dengji
    Huang, Di
    Wang, Xinhui
    ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION, 2014, VOL 6B, 2015,
  • [43] A comprehensive performance comparison between compressed air energy storage and compressed carbon dioxide energy storage
    Li, Hanchen
    Ding, Ruochen
    Su, Wen
    Lin, Xinxing
    Guan, Sumin
    Ye, Qingping
    Zheng, Zhimei
    Wang, Jiaqiang
    ENERGY CONVERSION AND MANAGEMENT, 2024, 319
  • [44] Simulation Research on Parameters of Compressed Air Energy Storage System
    Liu, Yanchi
    2022 IEEE INTERNATIONAL CONFERENCE ON ELECTRICAL ENGINEERING, BIG DATA AND ALGORITHMS (EEBDA), 2022, : 1014 - 1016
  • [45] Conceptual Design of Ocean Compressed Air Energy Storage System
    Lim, Saniel D.
    Mazzoleni, Andre P.
    Park, Joong-kyoo
    Ro, Paul I.
    Quinlan, Brendan
    MARINE TECHNOLOGY SOCIETY JOURNAL, 2013, 47 (02) : 70 - 81
  • [46] A THERMODYNAMIC MODEL OF A HIGH TEMPERATURE HYBRID COMPRESSED AIR ENERGY STORAGE SYSTEM FOR GRID STORAGE
    Houssainy, Sammy
    Lakeh, Reza Baghaei
    Kavehpour, H. Pirouz
    PROCEEDINGS OF THE ASME 10TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, 2016, VOL 2, 2016,
  • [47] A preliminary dynamic behaviors analysis of a hybrid energy storage system based on adiabatic compressed air energy storage and flywheel energy storage system for wind power application
    Zhao, Pan
    Wang, Mingkun
    Wang, Jiangfeng
    Dai, Yiping
    ENERGY, 2015, 84 : 825 - 839
  • [48] Assessment of a Compressed Air Energy Storage System using gas pipelines as storage devices in Chile
    Valdivia, Patricio
    Barraza, Rodrigo
    Saldivia, David
    Gacitua, Leonardo
    Barrueto, Aldo
    Estay, Danilo
    RENEWABLE ENERGY, 2020, 147 : 1251 - 1265
  • [49] Thermodynamic analysis of a hybrid system combining compressed air energy storage and pressurized water thermal energy storage
    He, Xin
    Wang, Huanran
    Ge, Gangqiang
    Liu, Yitong
    Zhang, Yufei
    APPLIED THERMAL ENGINEERING, 2023, 229
  • [50] DESIGN OF A MODULAR SOLID-BASED THERMAL ENERGY STORAGE FOR A HYBRID COMPRESSED AIR ENERGY STORAGE SYSTEM
    Lakeh, Reza Baghaei
    Villazana, Ian C.
    Houssainy, Sammy
    Anderson, Kevin R.
    Kavehpour, H. Pirouz
    PROCEEDINGS OF THE ASME 10TH INTERNATIONAL CONFERENCE ON ENERGY SUSTAINABILITY, 2016, VOL 2, 2016,