Influence of geometrical dimensions and particle diameter on exergy performance of packed-bed thermal energy storage
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DOI: 10.1016/j.energy.2022.125204
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Cited by:
- Qu, Ming-Liang & Yang, Jinping & Foroughi, Sajjad & Zhang, Yifan & Yu, Zi-Tao & Blunt, Martin J. & Lin, Qingyang, 2024. "Pore-to-meter scale modeling of heat and mass transport applied to thermal energy storage: How local thermal and velocity fluctuations affect average thermal dispersivity," Energy, Elsevier, vol. 296(C).
- Ge, Gangqiang & Wang, Huanran & Li, Ruixiong & Sun, Hao & Zhang, Yufei, 2024. "Investigation and improvement of complex characteristics of packed bed thermal energy storage (PBTES) in adiabatic compressed air energy storage (A-CAES) systems," Energy, Elsevier, vol. 296(C).
- Tian, Lei & Wang, Jiangjiang & Zhao, Lei & Wei, Changqi, 2023. "Unsteady-state thermal performance analysis of cascaded packed-bed latent thermal storage in solar heating system," Energy, Elsevier, vol. 272(C).
- Ochmann, J. & Rusin, K. & Bartela, Ł., 2023. "Comprehensive analytical model of energy and exergy performance of the thermal energy storage," Energy, Elsevier, vol. 283(C).
- Zeng, Ziya & Zhao, Bingchen & Wang, Ruzhu, 2023. "High-power-density packed-bed thermal energy storage using form-stable expanded graphite-based phase change composite," Renewable and Sustainable Energy Reviews, Elsevier, vol. 182(C).
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Keywords
Thermal energy storage; Adiabatic compressed air energy storage; Post-mining shaft; Exergy; Computational fluid dynamics; Heat transfer; Packed bed;All these keywords.
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