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Long-term prospects for compressed air storage

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  • Glendenning, I.

Abstract

The compressed air storage (CAS) concept has been reviewed in the light of the long-term requirement for energy storage to effect load following in a predominantly nuclear generating system. This requirement would eventually lead to the operation of storage plant on a daily cycle of storing energy for 6-8 h and generating for 12-16 h. Conventional CAS schemes, typified by the Nordwestdeutchen Kraftwerke (NWK) installation in West Germany, are shown to be incapable of fulfilling this duty on merit. The basic concept is then re-examined and a novel development is proposed which, by using uncooled compressors and conserving the compression energy, constitutes a true energy storage scheme requiring no fuel other than the off-peak energy taken from the electrical grid. The efficiency and other performance characteristics of this proposal are discussed. The capital cost of an 8 GWh storage scheme is tentatively put at £125-175/kW (at 1974 price levels), depending on the air store construction, well within the £200/kW cost target which storage plant would need to meet to be of interest for storing off-peak nuclear power by the end of the present century. It is concluded that, once developed, CAS schemes which incorporate heat storage could provide an attractive method for storing off-peak electricity.

Suggested Citation

  • Glendenning, I., 1976. "Long-term prospects for compressed air storage," Applied Energy, Elsevier, vol. 2(1), pages 39-56, January.
  • Handle: RePEc:eee:appene:v:2:y:1976:i:1:p:39-56
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    Cited by:

    1. Kim, Hyung-Mok & Rutqvist, Jonny & Ryu, Dong-Woo & Choi, Byung-Hee & Sunwoo, Choon & Song, Won-Kyong, 2012. "Exploring the concept of compressed air energy storage (CAES) in lined rock caverns at shallow depth: A modeling study of air tightness and energy balance," Applied Energy, Elsevier, vol. 92(C), pages 653-667.
    2. Stefano Ubertini & Andrea Luigi Facci & Luca Andreassi, 2017. "Hybrid Hydrogen and Mechanical Distributed Energy Storage," Energies, MDPI, vol. 10(12), pages 1-16, December.
    3. Madlener, Reinhard & Latz, Jochen, 2013. "Economics of centralized and decentralized compressed air energy storage for enhanced grid integration of wind power," Applied Energy, Elsevier, vol. 101(C), pages 299-309.
    4. Roos, P. & Haselbacher, A., 2022. "Analytical modeling of advanced adiabatic compressed air energy storage: Literature review and new models," Renewable and Sustainable Energy Reviews, Elsevier, vol. 163(C).
    5. Marano, Vincenzo & Rizzo, Gianfranco & Tiano, Francesco Antonio, 2012. "Application of dynamic programming to the optimal management of a hybrid power plant with wind turbines, photovoltaic panels and compressed air energy storage," Applied Energy, Elsevier, vol. 97(C), pages 849-859.
    6. Salgi, Georges & Lund, Henrik, 2008. "System behaviour of compressed-air energy-storage in Denmark with a high penetration of renewable energy sources," Applied Energy, Elsevier, vol. 85(4), pages 182-189, April.

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