Comprehensive assessment and optimization of a hybrid cogeneration system based on compressed air energy storage with high-temperature thermal energy storage

被引:1
|
作者
Cao, Ruifeng [1 ]
Li, Weiqiang [1 ]
Ni, Hexi [1 ,2 ]
Kuang, Cuixiong [1 ]
Liang, Yutong [1 ]
Fu, Ziheng [1 ]
机构
[1] Northeast Elect Power Univ, Sch Energy & Power Engn, Jilin 132012, Peoples R China
[2] Harbin Boiler Co Ltd, Harbin 150046, Peoples R China
来源
关键词
compressed air energy storage (CAES); high-temperature thermal energy storage; supercritical CO2 Brayton cycle; performance assessment; multi-objective optimization; THERMODYNAMIC ANALYSIS; MULTIOBJECTIVE OPTIMIZATION; CAES SYSTEM; CYCLE; WIND;
D O I
10.1007/s11708-024-0972-2
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
Compressed air energy storage (CAES) is an effective technology for mitigating the fluctuations associated with renewable energy sources. In this work, a hybrid cogeneration energy system that integrates CAES with high-temperature thermal energy storage and a supercritical CO2 Brayton cycle is proposed for enhancing the overall system performance. This proposal emphasizes system cost-effectiveness, eco-friendliness, and adaptability. Comprehensive analyses, including thermodynamic, exergoeconomic, economic, and sensitivity evaluations, are conducted to assess the viability of the system. The findings indicate that, under design conditions, the system achieves an energy storage density, a round-trip efficiency, an exergy efficiency, a unit product cost, and a dynamic payback period of 5.49 kWh/m3, 58.39%, 61.85%, 0.1421 $/kWh, and 4.81 years, respectively. The high-temperature thermal energy storage unit, intercoolers, and aftercooler show potential for optimization due to their suboptimal exergoeconomic performance. Sensitivity evaluation indicates that the operational effectiveness of the system is highly sensitive to the maximum and minimum air storage pressures, the outlet temperature of the high-temperature thermal energy storage unit, and the isentropic efficiencies of both compressors and turbines. Ultimately, the system is optimized for maximum exergy efficiency and minimum dynamic payback period. These findings demonstrate the significant potential of this system and provide valuable insights for its design and optimization.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Thermodynamic analysis of a hybrid energy storage system based on compressed air and liquid air
    Kantharaj, Bharath
    Garvey, Seamus
    Pimm, Andrew
    SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2015, 11 : 159 - 164
  • [32] Economic analysis of a hybrid energy storage system based on liquid air and compressed air
    Pimm, Andrew J.
    Garvey, Seamus D.
    Kantharaj, Bharath
    JOURNAL OF ENERGY STORAGE, 2015, 4 : 24 - 35
  • [33] HIGH-TEMPERATURE THERMAL-ENERGY STORAGE
    JOYCE, JP
    TRANSACTIONS OF THE AMERICAN NUCLEAR SOCIETY, 1977, 26 : 414 - 415
  • [34] Optimization Control of Internal Combustion Engine-Compressed Air Energy Storage Cogeneration System Based on Genetic Algorithm
    Hai, Xiaopeng
    Wei, Xingguo
    Li, Ke
    Gao, Junjie
    Zhang, Chenghui
    2018 37TH CHINESE CONTROL CONFERENCE (CCC), 2018, : 7514 - 7519
  • [35] Concise analytical solution and optimization of compressed air energy storage systems with thermal storage
    Guo, Huan
    Xu, Yujie
    Huang, Lujing
    Zhu, Yilin
    Liang, Qi
    Chen, Haisheng
    ENERGY, 2022, 258
  • [36] A hybrid energy storage system using compressed air and hydrogen as the energy carrier
    Bartela, Lukasz
    ENERGY, 2020, 196 (196)
  • [37] Exergoeconomic assessment of a high-efficiency compressed air energy storage system
    Esmaeilion, Farbod
    Soltani, M.
    Nathwani, Jatin
    Al-Haq, Armughan
    Dusseault, M. B.
    A. Rosen, Marc
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2024, 191
  • [38] Thermodynamic analysis of a high temperature hybrid compressed air energy storage (HTH-CAES) system
    Houssainy, Sammy
    Janbozorgi, Mohammad
    Ip, Peggy
    Kavehpour, Pirouz
    RENEWABLE ENERGY, 2018, 115 : 1043 - 1054
  • [39] Adiabatic Compressed Air Energy Storage with packed bed thermal energy storage
    Barbour, Edward
    Mignard, Dimitri
    Ding, Yulong
    Li, Yongliang
    APPLIED ENERGY, 2015, 155 : 804 - 815
  • [40] 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