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Thermodynamics and economic performance comparison of three high-temperature hot rock cavern based energy storage concepts

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  • Arabkoohsar, A.
  • Andresen, G.B.

Abstract

Employing a thermal energy storage (TES) as a medium for storing power in an energy storage system was recently proposed and analyzed in two different configurations. The first proposal is employing the TES as the boiler of a Rankin cycle based (RCB) energy storage plant. In this configuration, heat production along with power production may or may not be an objective (RCB1 and RCB2). The other proposal is employing the TES as the combustion chamber of an Erickson cycle for energy storage applications (ECB). In this work, a detailed energy, exergy and economic performance comparison between the three systems is accomplished, and the positive and negative features of each of them are addressed. All of the three systems are designed for a 100 MWp wind power in Denmark as the case study. Although it is demonstrated that the application of the ECB system is limited to locations with high heating demand, it outperforms both of the RCB systems due to its very fast response and also the high efficiency that it offers. The overall energy efficiencies of the RCB1, RCB2 and ECB systems are 85%, 32% and 80% while their exergy efficiencies are 47%, 58% and 58%, respectively.

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  • Arabkoohsar, A. & Andresen, G.B., 2017. "Thermodynamics and economic performance comparison of three high-temperature hot rock cavern based energy storage concepts," Energy, Elsevier, vol. 132(C), pages 12-21.
  • Handle: RePEc:eee:energy:v:132:y:2017:i:c:p:12-21
    DOI: 10.1016/j.energy.2017.05.071
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    References listed on IDEAS

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    Cited by:

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    3. Sheikholeslami, M. & Jafaryar, M. & Shafee, Ahmad & Li, Zhixiong, 2019. "Simulation of nanoparticles application for expediting melting of PCM inside a finned enclosure," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 523(C), pages 544-556.
    4. Nami, H. & Arabkoohsar, A., 2019. "Improving the power share of waste-driven CHP plants via parallelization with a small-scale Rankine cycle, a thermodynamic analysis," Energy, Elsevier, vol. 171(C), pages 27-36.
    5. Hussam, Wisam K. & Rahbari, Hamid Reza & Arabkoohsar, Ahmad, 2020. "Off-design operation analysis of air-based high-temperature heat and power storage," Energy, Elsevier, vol. 196(C).
    6. Farshad, Seyyed Ali & Sheikholeslami, M., 2019. "Simulation of nanoparticles second law treatment inside a solar collector considering turbulent flow," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 525(C), pages 1-12.
    7. Li, Zhixiong & Sheikholeslami, M. & Ayani, M. & Shamlooei, M. & Shafee, Ahmad & Waly, Mohamed Ibrahim & Tlili, I., 2019. "Acceleration of solidification process by means of nanoparticles in an energy storage enclosure using numerical approach," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 524(C), pages 540-552.
    8. Arabkoohsar, Ahmad & Rahrabi, Hamid Reza & Alsagri, Ali Sulaiman & Alrobaian, Abdulrahman A., 2020. "Impact of Off-design operation on the effectiveness of a low-temperature compressed air energy storage system," Energy, Elsevier, vol. 197(C).
    9. Montazerinejad, H. & Eicker, U., 2022. "Recent development of heat and power generation using renewable fuels: A comprehensive review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 165(C).
    10. Sheikholeslami, M. & Keramati, Hadi & Shafee, Ahmad & Li, Zhixiong & Alawad, Omer A. & Tlili, I., 2019. "Nanofluid MHD forced convection heat transfer around the elliptic obstacle inside a permeable lid drive 3D enclosure considering lattice Boltzmann method," Physica A: Statistical Mechanics and its Applications, Elsevier, vol. 523(C), pages 87-104.

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