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Experimental study on heat transfer characteristics between high-pressure air and molten salt used in solar-aided compressed air energy storage systems

Author

Listed:
  • Zhou, Yufei
  • Zhang, Hanfei
  • Liu, Shuo
  • Lu, Ziyi
  • Ding, Xingqi
  • Duan, Liqiang
  • Desideri, Umberto

Abstract

To establish a zero-emission, efficient, and reliable compressed air energy storage (CAES) system to support the large-scale integration of renewable energy into the grid, many studies are integrating concentrated solar power with the CAES, forming solar-aided compressed air energy storage (SA-CAES) systems. However, current integration schemes remain at the theoretical research stage. Furthermore, the heat transfer performance of the high-pressure air when exchanging heat with solar heat transfer fluids involved in the discharging process of the SA-CAES system has not been revealed by existing related experimental studies. Therefore, this paper designs a shell-and-tube heat exchanger and establishes a high-pressure air production system and a molten salt circulation system, to investigate the heat transfer performance of the high-pressure air inside the tubes. The novelty of this experiment lies in increasing the air-side pressure up to 5 MPa and proposing new air-side heat transfer correlations at high pressures, which provides important support for SA-CAES systems. The results indicate that the Reynolds number of air is the primary factor affecting heat transfer capability, higher Reynolds numbers result in better heat transfer rate and Nusselt number. An increase in air pressure has a minor negative impact on the heat transfer. In the turbulent region, the Gnielinski correlation still provides good predictive results, with a maximum deviation of 23 % within the experimental range. Whereas the Hansen correlation underpredicts the Nusselt number on the air side. New heat transfer correlations for high-pressure air have been established for both laminar and turbulent regions, showing prediction errors within ±10 % compared to experimental data, demonstrating high predictive accuracy.

Suggested Citation

  • Zhou, Yufei & Zhang, Hanfei & Liu, Shuo & Lu, Ziyi & Ding, Xingqi & Duan, Liqiang & Desideri, Umberto, 2024. "Experimental study on heat transfer characteristics between high-pressure air and molten salt used in solar-aided compressed air energy storage systems," Energy, Elsevier, vol. 313(C).
  • Handle: RePEc:eee:energy:v:313:y:2024:i:c:s0360544224039057
    DOI: 10.1016/j.energy.2024.134127
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    as
    1. 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).
    2. She, Xiaohui & Peng, Xiaodong & Nie, Binjian & Leng, Guanghui & Zhang, Xiaosong & Weng, Likui & Tong, Lige & Zheng, Lifang & Wang, Li & Ding, Yulong, 2017. "Enhancement of round trip efficiency of liquid air energy storage through effective utilization of heat of compression," Applied Energy, Elsevier, vol. 206(C), pages 1632-1642.
    3. Wang, Zhiwen & Xiong, Wei & Ting, David S.-K. & Carriveau, Rupp & Wang, Zuwen, 2016. "Conventional and advanced exergy analyses of an underwater compressed air energy storage system," Applied Energy, Elsevier, vol. 180(C), pages 810-822.
    4. Ding, Xingqi & Zhou, Yufei & Duan, Liqiang & Li, Da & Zheng, Nan, 2023. "Comprehensive performance investigation of a novel solar-assisted liquid air energy storage system with different operating modes in different seasons," Energy, Elsevier, vol. 284(C).
    5. 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).
    6. Li, Yongliang & Cao, Hui & Wang, Shuhao & Jin, Yi & Li, Dacheng & Wang, Xiang & Ding, Yulong, 2014. "Load shifting of nuclear power plants using cryogenic energy storage technology," Applied Energy, Elsevier, vol. 113(C), pages 1710-1716.
    7. Mun, Haneul & Kim, Yeonghyun & Park, Jinwoo & Lee, Inkyu, 2024. "Power generation system utilizing cold energy from liquid hydrogen: Integration with a liquid air storage system for peak load shaving," Energy, Elsevier, vol. 306(C).
    8. Rosales-Asensio, Enrique & Diez, David Borge & Sarmento, Paula, 2024. "Electricity balancing challenges for markets with high variable renewable generation," Renewable and Sustainable Energy Reviews, Elsevier, vol. 189(PA).
    9. Tafone, Alessio & Borri, Emiliano & Comodi, Gabriele & van den Broek, Martijn & Romagnoli, Alessandro, 2018. "Liquid Air Energy Storage performance enhancement by means of Organic Rankine Cycle and Absorption Chiller," Applied Energy, Elsevier, vol. 228(C), pages 1810-1821.
    10. Qi, Meng & Park, Jinwoo & Lee, Inkyu & Moon, Il, 2022. "Liquid air as an emerging energy vector towards carbon neutrality: A multi-scale systems perspective," Renewable and Sustainable Energy Reviews, Elsevier, vol. 159(C).
    11. Su, Dawei, 2022. "Comprehensive thermodynamic and exergoeconomic analyses and multi-objective optimization of a compressed air energy storage hybridized with a parabolic trough solar collectors," Energy, Elsevier, vol. 244(PA).
    12. Li, Da & Duan, Liqiang, 2022. "Design and analysis of flexible integration of solar aided liquid air energy storage system," Energy, Elsevier, vol. 259(C).
    13. Xue, Xiao-Dai & Zhang, Tong & Zhang, Xue-Lin & Ma, Lin-Rui & He, Ya-Ling & Li, Ming-Jia & Mei, Sheng-Wei, 2021. "Performance evaluation and exergy analysis of a novel combined cooling, heating and power (CCHP) system based on liquid air energy storage," Energy, Elsevier, vol. 222(C).
    14. Chen, Shuhang & Qiu, Changxu & Shen, Yunwei & Tao, Xuan & Gan, Zhihua, 2024. "Thermodynamic and economic analysis of new coupling processes with large-scale hydrogen liquefaction process and liquid air energy storage," Energy, Elsevier, vol. 286(C).
    15. Solano-Olivares, K. & Santoyo, E. & Santoyo-Castelazo, E., 2024. "Integrated sustainability assessment framework for geothermal energy technologies: A literature review and a new proposal of sustainability indicators for Mexico," Renewable and Sustainable Energy Reviews, Elsevier, vol. 192(C).
    16. Bazdar, Elaheh & Sameti, Mohammad & Nasiri, Fuzhan & Haghighat, Fariborz, 2022. "Compressed air energy storage in integrated energy systems: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 167(C).
    17. Luo, Xing & Wang, Jihong & Dooner, Mark & Clarke, Jonathan, 2015. "Overview of current development in electrical energy storage technologies and the application potential in power system operation," Applied Energy, Elsevier, vol. 137(C), pages 511-536.
    18. Lee, Inkyu & Park, Jinwoo & You, Fengqi & Moon, Il, 2019. "A novel cryogenic energy storage system with LNG direct expansion regasification: Design, energy optimization, and exergy analysis," Energy, Elsevier, vol. 173(C), pages 691-705.
    19. Kim, Yeonghyun & Qi, Meng & Cho, Jaehyun & Lee, Inkyu & Park, Jinwoo & Moon, Il, 2023. "Process design and analysis for combined hydrogen regasification process and liquid air energy storage," Energy, Elsevier, vol. 283(C).
    20. Isabelle dos Santos, Susane & Silva da Silveira, Denis & Freitas da Costa, Marconi & Soares de Freitas, Hannah Maria, 2024. "Systematic review of sustainable energy consumption from consumer behavior perspective," Renewable and Sustainable Energy Reviews, Elsevier, vol. 203(C).
    21. He, Wei & Wang, Jihong, 2018. "Optimal selection of air expansion machine in Compressed Air Energy Storage: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 87(C), pages 77-95.
    22. Park, Jinwoo & Cho, Seungsik & Qi, Meng & Noh, Wonjun & Lee, Inkyu & Moon, Il, 2021. "Liquid air energy storage coupled with liquefied natural gas cold energy: Focus on efficiency, energy capacity, and flexibility," Energy, Elsevier, vol. 216(C).
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