Comprehensive Review of Compressed Air Energy Storage (CAES) Technologies

被引:61
作者
Rabi, Ayah Marwan [1 ]
Radulovic, Jovana [1 ]
Buick, James M. [1 ]
机构
[1] Univ Portsmouth, Sch Mech & Design Engn, Portsmouth PO1 3DJ, England
来源
THERMO | 2023年 / 3卷 / 01期
关键词
compressed air energy storage; adiabatic compressed air energy storage; advanced adiabatic compressed air energy storage; ocean compressed air energy storage; isothermal compressed air energy storage; PHASE-CHANGE MATERIALS; LIQUID-FLOODED COMPRESSION; PILOT-SCALE DEMONSTRATION; GAS-TURBINE; THERMODYNAMIC ANALYSIS; EFFICIENCY ANALYSIS; HIGH-TEMPERATURE; RESIDENTIAL BUILDINGS; SCROLL MACHINES; SYSTEM;
D O I
10.3390/thermo3010008
中图分类号
O414.1 [热力学];
学科分类号
摘要
As renewable energy production is intermittent, its application creates uncertainty in the level of supply. As a result, integrating an energy storage system (ESS) into renewable energy systems could be an effective strategy to provide energy systems with economic, technical, and environmental benefits. Compressed Air Energy Storage (CAES) has been realized in a variety of ways over the past decades. As a mechanical energy storage system, CAES has demonstrated its clear potential amongst all energy storage systems in terms of clean storage medium, high lifetime scalability, low self-discharge, long discharge times, relatively low capital costs, and high durability. However, its main drawbacks are its long response time, low depth of discharge, and low roundtrip efficiency (RTE). This paper provides a comprehensive review of CAES concepts and compressed air storage (CAS) options, indicating their individual strengths and weaknesses. In addition, the paper provides a comprehensive reference for planning and integrating different types of CAES into energy systems. Finally, the limitations and future perspectives of CAES are discussed.
引用
收藏
页码:104 / 126
页数:23
相关论文
共 135 条
[71]  
McBride, 2010, U.S. Patent, Patent No. [7,802,426, 7802426]
[72]  
McTigue J., 2016, Ph.D. Dissertation, P1
[73]   Assessment of design and operating parameters for a small compressed air energy storage system integrated with a stand-alone renewable power plant [J].
Minutillo, M. ;
Lavadera, A. Lubrano ;
Jannelli, E. .
JOURNAL OF ENERGY STORAGE, 2015, 4 :135-144
[74]   Energy efficiency analysis of wet compression systems through thermo-fluid dynamic considerations [J].
Mohan, Abhay ;
Chidambaram, Palani Kumar ;
Suryan, Abhilash ;
Kim, Heuy Dong .
JOURNAL OF CLEANER PRODUCTION, 2019, 214 :132-144
[75]   A profitability investigation into the collaborative operation of wind and underwater compressed air energy storage units in the spot market [J].
Moradi, Jalal ;
Shahinzadeh, Hossein ;
Khandan, Amirsalar ;
Moazzami, Majid .
ENERGY, 2017, 141 :1779-1794
[76]   Transient thermodynamic modeling and economic analysis of an adiabatic compressed air energy storage (A-CAES) based on cascade packed bed thermal energy storage with encapsulated phase change materials [J].
Mousavi, Shadi Bashiri ;
Adib, Mahdieh ;
Soltani, M. ;
Razmi, Amir Reza ;
Nathwani, Jatin .
ENERGY CONVERSION AND MANAGEMENT, 2021, 243
[77]  
Mozayeni H, 2019, Ph.D. Dissertation
[78]   Performance study of an advanced adiabatic compressed air energy storage system [J].
Mozayeni, Hamidreza ;
Negnevitsky, Michael ;
Wang, Xiaolin ;
Cao, Feng ;
Peng, Xueyuan .
1ST INTERNATIONAL CONFERENCE ON ENERGY AND POWER, ICEP2016, 2017, 110 :71-76
[79]   Review on phase change materials for cold thermal energy storage applications [J].
Nie, Binjian ;
Palacios, Anabel ;
Zou, Boyang ;
Liu, Jiaxu ;
Zhang, Tongtong ;
Li, Yunren .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 134
[80]   Review on phase change materials (PCMs) for cold thermal energy storage applications [J].
Oro, E. ;
de Gracia, A. ;
Castell, A. ;
Farid, M. M. ;
Cabeza, L. F. .
APPLIED ENERGY, 2012, 99 :513-533