IDEAS home Printed from https://ideas.repec.org/a/eee/rensus/v206y2024ics1364032124005884.html
   My bibliography  Save this article

Dynamic analysis of an adiabatic compressed air energy storage system with temperature-regulated in air tanks

Author

Listed:
  • Chen, Longxiang
  • Zhang, Liugan
  • Guo, Weikang
  • Lian, Hui
  • Wang, Yongwei
  • Ye, Kai
  • Xie, Meina

Abstract

In this study, an innovative temperature regulation method is developed to augment the air storage capacity of adiabatic compressed air energy storage. Hot water, produced by recovering waste heat from the discharging process, is injected into these tanks to control the air temperature as needed. The transient-state calculation models have been established for each component, and validation is performed using experimental data obtained from published work. The utilization of proportion integration differentiation control technology enables precise regulation of the air outlet temperature of heat exchangers, achieving a control accuracy of 1K. The operational status of the components has been investigated, and a comparison is made between the performances of the modified and traditional adiabatic compressed air energy storage systems. The comparative analysis results show that the modified system can achieve a notable round trip efficiency of 71.71 %, which is comparable to that of conventional system (71.41 %). The effective air storage density of the modified system is 47.24 kg/m3, which presents a 15.08 % increase compared to traditional system (41.05 kg/m3). The influence of discharge pressure and pressure difference between threshold pressure and discharge pressure is also investigated. It is found that the modified adiabatic compressed air energy storage shows a consistently greater effective air storage density than traditional system, with a minimum increase exceeding 10.52 %.

Suggested Citation

  • Chen, Longxiang & Zhang, Liugan & Guo, Weikang & Lian, Hui & Wang, Yongwei & Ye, Kai & Xie, Meina, 2024. "Dynamic analysis of an adiabatic compressed air energy storage system with temperature-regulated in air tanks," Renewable and Sustainable Energy Reviews, Elsevier, vol. 206(C).
  • Handle: RePEc:eee:rensus:v:206:y:2024:i:c:s1364032124005884
    DOI: 10.1016/j.rser.2024.114862
    as

    Download full text from publisher

    File URL: http://www.sciencedirect.com/science/article/pii/S1364032124005884
    Download Restriction: Full text for ScienceDirect subscribers only

    File URL: https://libkey.io/10.1016/j.rser.2024.114862?utm_source=ideas
    LibKey link: if access is restricted and if your library uses this service, LibKey will redirect you to where you can use your library subscription to access this item
    ---><---

    As the access to this document is restricted, you may want to

    for a different version of it.

    References listed on IDEAS

    as
    1. Daniel Gilfillan & Jamie Pittock, 2022. "Pumped Storage Hydropower for Sustainable and Low-Carbon Electricity Grids in Pacific Rim Economies," Energies, MDPI, vol. 15(9), pages 1-19, April.
    2. Alirahmi, Seyed Mojtaba & Gundersen, Truls & Arabkoohsar, Ahmad & Klemeš, Jiří Jaromír & Sin, Gürkan & Yu, Haoshui, 2024. "Process design, integration, and optimization of a novel compressed air energy storage for the coproduction of electricity, cooling, and water," Renewable and Sustainable Energy Reviews, Elsevier, vol. 189(PB).
    3. Dib, Ghady & Haberschill, Philippe & Rullière, Romuald & Revellin, Rémi, 2021. "Modelling small-scale trigenerative advanced adiabatic compressed air energy storage for building application," Energy, Elsevier, vol. 237(C).
    4. Chen, Hao & Wang, Huanran & Li, Ruixiong & Sun, Hao & Ge, Gangqiang & Ling, Lanning, 2022. "Experimental and analytical investigation of near-isothermal pumped hydro-compressed air energy storage system," Energy, Elsevier, vol. 249(C).
    5. Prasasti, E.B. & Aouad, M. & Joseph, M. & Zangeneh, M. & Terheiden, K., 2024. "Optimization of pumped hydro energy storage design and operation for offshore low-head application and grid stabilization," Renewable and Sustainable Energy Reviews, Elsevier, vol. 191(C).
    6. Bennett, Jeffrey A. & Fitts, Jeffrey P. & Clarens, Andres F., 2022. "Compressed air energy storage capacity of offshore saline aquifers using isothermal cycling," Applied Energy, Elsevier, vol. 325(C).
    7. Esmaeilion, Farbod & Soltani, M. & Nathwani, Jatin & Al-Haq, Armughan & Dusseault, M.B. & Rosen, Marc A., 2024. "Exergoeconomic assessment of a high-efficiency compressed air energy storage system," Renewable and Sustainable Energy Reviews, Elsevier, vol. 191(C).
    8. Xia, Tian & Li, Yaowang & Zhang, Ning & Kang, Chongqing, 2022. "Role of compressed air energy storage in urban integrated energy systems with increasing wind penetration," Renewable and Sustainable Energy Reviews, Elsevier, vol. 160(C).
    9. Wang, Sixian & Zhang, Xuelin & Yang, Luwei & Zhou, Yuan & Wang, Junjie, 2016. "Experimental study of compressed air energy storage system with thermal energy storage," Energy, Elsevier, vol. 103(C), pages 182-191.
    10. Li, Jinlong & Wang, ZhuoTeng & Zhang, Shuai & Shi, Xilin & Xu, Wenjie & Zhuang, Duanyang & Liu, Jia & Li, Qingdong & Chen, Yunmin, 2022. "Machine-learning-based capacity prediction and construction parameter optimization for energy storage salt caverns," Energy, Elsevier, vol. 254(PA).
    11. Matos, Catarina R. & Pereira da Silva, Patrícia & Carneiro, Júlio F., 2023. "Economic assessment for compressed air energy storage business model alternatives," Applied Energy, Elsevier, vol. 329(C).
    12. Guo, Huan & Xu, Yujie & Zhang, Xinjing & Zhu, Yilin & Chen, Haisheng, 2021. "Finite-time thermodynamics modeling and analysis on compressed air energy storage systems with thermal storage," Renewable and Sustainable Energy Reviews, Elsevier, vol. 138(C).
    13. Chen, Hao & Wang, Huanran & Li, Ruixiong & Sun, Hao & Zhang, Yufei & Ling, Lanning, 2023. "Thermo-dynamic and economic analysis of a novel pumped hydro-compressed air energy storage system combined with compressed air energy storage system as a spray system," Energy, Elsevier, vol. 280(C).
    Full references (including those not matched with items on IDEAS)

    Citations

    Citations are extracted by the CitEc Project, subscribe to its RSS feed for this item.
    as


    Cited by:

    1. Yan Cui & Tong Jiang & Zhengda Chen, 2025. "A Constant-Pressure Air Storage Operation Strategy for an Isothermal Compressed Air Energy Storage System Based on a Linear-Drive Liquid Piston," Energies, MDPI, vol. 18(12), pages 1-24, June.
    2. Li, Yi & Xue, Ping & Li, Yi & Liu, Yaning & Wang, Jingrui & Yin, Wenjie, 2025. "Modeling underground performance of compressed air energy storage in a practical flat aquifer: Insights on the permeability effects," Energy, Elsevier, vol. 322(C).
    3. Liu, Zhan & Yuan, Kaifeng & Cheng, Lingyan & Li, Xiaozhao, 2025. "Thermal management on a Type IV storage tank of hydrogen fuel cell electric vehicles during rapid charging," Renewable Energy, Elsevier, vol. 245(C).

    Most related items

    These are the items that most often cite the same works as this one and are cited by the same works as this one.
    1. Chen, Longxiang & Zhang, Liugan & Yang, Huipeng & Xie, Meina & Ye, Kai, 2022. "Dynamic simulation of a Re-compressed adiabatic compressed air energy storage (RA-CAES) system," Energy, Elsevier, vol. 261(PB).
    2. Zhang, Liugan & Xie, Meina & Su, Chunlei & Ye, Kai & Li, Shizhu & Chen, Long xiang, 2024. "Experimental analysis and cost assessment of a novel variable-volume air storage device designed for compressed air energy storage," Energy, Elsevier, vol. 313(C).
    3. Bazdar, Elaheh & Nasiri, Fuzhan & Haghighat, Fariborz, 2024. "Resilience-centered optimal sizing and scheduling of a building-integrated PV-based energy system with hybrid adiabatic-compressed air energy storage and battery systems," Energy, Elsevier, vol. 308(C).
    4. Ran, Peng & Fan, Qinyang & Ou, YiFan & Zhang, Chunyu, 2025. "Energy, conventional exergy, advanced exergy and economic analysis of a steam injection compressed air energy storage integrated with concentrating solar power," Energy, Elsevier, vol. 323(C).
    5. Forootan, Mohammad Mahdi & Ahmadi, Abolfazl, 2024. "Machine learning-based optimization and 4E analysis of renewable-based polygeneration system by integration of GT-SRC-ORC-SOFC-PEME-MED-RO using multi-objective grey wolf optimization algorithm and ne," Renewable and Sustainable Energy Reviews, Elsevier, vol. 200(C).
    6. Guo, Huan & Xu, Yujie & Kang, Haoyuan & Guo, Wenbing & Liu, Yu & Zhang, Xinjing & Zhou, Xuezhi & Chen, Haisheng, 2023. "From theory to practice: Evaluating the thermodynamic design landscape of compressed air energy storage systems," Applied Energy, Elsevier, vol. 352(C).
    7. Wang, Yongfeng & Li, Shuguang & Bu sinnah, Zainab Ali & Ghandour, Raymond & Khan, Mohammad Nadeem & Ali, H. Elhosiny, 2024. "Optimizing energy efficiency and emission reduction: Leveraging the power of machine learning in an integrated compressed air energy storage-solid oxide fuel cell system," Energy, Elsevier, vol. 313(C).
    8. Cui, Jie & Yang, Xueming & Chen, Jianing & Su, Hui & Xie, Jianfei, 2024. "Multi-perspective analysis of adiabatic compressed air energy storage system with cascaded packed bed latent heat storage under variable conditions," Energy, Elsevier, vol. 305(C).
    9. Liu, Shulong & Huang, Xuechen & Feng, Dulong & Zhang, Jinfeng & Gao, Chao & Wan, Qian, 2025. "Techno-economic assessment and optimized performance of a multi-generation setup composed of a wind turbine and a compressed air energy storage system," Energy, Elsevier, vol. 328(C).
    10. He, Xin & Li, ChengChen & Wang, Huanran, 2022. "Thermodynamics analysis of a combined cooling, heating and power system integrating compressed air energy storage and gas-steam combined cycle," Energy, Elsevier, vol. 260(C).
    11. Qi, Ji & Liu, Zhiyong & Zhao, Yuhai & Yin, Huimin & Zhu, Fengwu, 2024. "Optimizing compressed air energy storage with organic Rankine cycle and ejector refrigeration for sustainable power and cooling provision," Energy, Elsevier, vol. 308(C).
    12. Chen, Long Xiang & Xie, Mei Na & Zhao, Pan Pan & Wang, Feng Xiang & Hu, Peng & Wang, Dong Xiang, 2018. "A novel isobaric adiabatic compressed air energy storage (IA-CAES) system on the base of volatile fluid," Applied Energy, Elsevier, vol. 210(C), pages 198-210.
    13. Houssainy, Sammy & Janbozorgi, Mohammad & Ip, Peggy & Kavehpour, Pirouz, 2018. "Thermodynamic analysis of a high temperature hybrid compressed air energy storage (HTH-CAES) system," Renewable Energy, Elsevier, vol. 115(C), pages 1043-1054.
    14. Cheayb, Mohamad & Marin Gallego, Mylène & Tazerout, Mohand & Poncet, Sébastien, 2022. "A techno-economic analysis of small-scale trigenerative compressed air energy storage system," Energy, Elsevier, vol. 239(PA).
    15. Prasasti, E.B. & Joseph, M. & Miao, X. & Zangeneh, M. & Terheiden, K., 2024. "Design of shaft- and rim-driven contra-rotating reversible pump-turbine to optimize novel low-head pumped hydro energy storages," Energy, Elsevier, vol. 306(C).
    16. Yang, Biao & Li, Deyou & Wang, Chuanchao & Zhang, Yi & Fu, Xiaolong & Wang, Hongjie, 2024. "Performance analysis of a novel multi-machine compensable pumped hydro compressed air energy storage system," Energy, Elsevier, vol. 310(C).
    17. Dib, Ghady & Haberschill, Philippe & Rullière, Romuald & Revellin, Rémi, 2021. "Modelling small-scale trigenerative advanced adiabatic compressed air energy storage for building application," Energy, Elsevier, vol. 237(C).
    18. Guo, Cong & Xu, Yujie & Zhang, Xinjing & Guo, Huan & Zhou, Xuezhi & Liu, Chang & Qin, Wei & Li, Wen & Dou, Binlin & Chen, Haisheng, 2017. "Performance analysis of compressed air energy storage systems considering dynamic characteristics of compressed air storage," Energy, Elsevier, vol. 135(C), pages 876-888.
    19. Fahlbeck, Jonathan & Nilsson, Håkan & Arabnejad, Mohammad Hossein & Salehi, Saeed, 2024. "Performance characteristics of a contra-rotating pump-turbine in turbine and pump modes under cavitating flow conditions," Renewable Energy, Elsevier, vol. 237(PB).
    20. Xu, Ying & Ren, Li & Zhang, Zhongping & Tang, Yuejin & Shi, Jing & Xu, Chen & Li, Jingdong & Pu, Dongsheng & Wang, Zhuang & Liu, Huajun & Chen, Lei, 2018. "Analysis of the loss and thermal characteristics of a SMES (Superconducting Magnetic Energy Storage) magnet with three practical operating conditions," Energy, Elsevier, vol. 143(C), pages 372-384.

    More about this item

    Keywords

    ;
    ;
    ;
    ;

    Statistics

    Access and download statistics

    Corrections

    All material on this site has been provided by the respective publishers and authors. You can help correct errors and omissions. When requesting a correction, please mention this item's handle: RePEc:eee:rensus:v:206:y:2024:i:c:s1364032124005884. See general information about how to correct material in RePEc.

    If you have authored this item and are not yet registered with RePEc, we encourage you to do it here. This allows to link your profile to this item. It also allows you to accept potential citations to this item that we are uncertain about.

    If CitEc recognized a bibliographic reference but did not link an item in RePEc to it, you can help with this form .

    If you know of missing items citing this one, you can help us creating those links by adding the relevant references in the same way as above, for each refering item. If you are a registered author of this item, you may also want to check the "citations" tab in your RePEc Author Service profile, as there may be some citations waiting for confirmation.

    For technical questions regarding this item, or to correct its authors, title, abstract, bibliographic or download information, contact: Catherine Liu (email available below). General contact details of provider: http://www.elsevier.com/wps/find/journaldescription.cws_home/600126/description#description .

    Please note that corrections may take a couple of weeks to filter through the various RePEc services.

    IDEAS is a RePEc service. RePEc uses bibliographic data supplied by the respective publishers.