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Circulating fluidized bed heat recovery/storage and its potential to use coated phase-change-material (PCM) particles

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  • Pitié, F.
  • Zhao, C.Y.
  • Baeyens, J.
  • Degrève, J.
  • Zhang, H.L.

Abstract

Within the thermal energy capture and/or storage systems currently available or investigated, PCMs are the sole latent heat stores. Despite their low thermal conductivity, that limits charging and discharging times, the higher energy storage capacity per unit weight in comparison with sensible heat stores, makes them increasingly attractive for high temperature applications, resulting in reduced storage volumes and required circulation rates within the heat collector. The present paper introduces these PCMs, and their potential application in high temperature energy capture and storage, using a circulating fluidized bed (CFB) as transfer/storage mode. Thermal considerations determine the optimum size range for the applied particles (<400μm). The heat transfer from the wall of the CFB to the flowing gas–solid suspension is a major design parameter of the collector, and studied for different operating conditions as determined by the gas velocity and solids circulation flux. Measured values of the heat transfer coefficients are discussed, and compared with empirical predictions of Molodtsof–Muzyka, and Gorliz–Grace. Fair agreement is obtained only when the empirical parameters are carefully predicted. The application of a packet renewal mechanism at the wall is also investigated, with a fair prediction of the heat transfer coefficient in terms of the expected solid contact time at the wall.

Suggested Citation

  • Pitié, F. & Zhao, C.Y. & Baeyens, J. & Degrève, J. & Zhang, H.L., 2013. "Circulating fluidized bed heat recovery/storage and its potential to use coated phase-change-material (PCM) particles," Applied Energy, Elsevier, vol. 109(C), pages 505-513.
  • Handle: RePEc:eee:appene:v:109:y:2013:i:c:p:505-513
    DOI: 10.1016/j.apenergy.2012.12.048
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    References listed on IDEAS

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    5. Gomez-Garcia, Fabrisio & Gauthier, Daniel & Flamant, Gilles, 2017. "Design and performance of a multistage fluidised bed heat exchanger for particle-receiver solar power plants with storage," Applied Energy, Elsevier, vol. 190(C), pages 510-523.
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    9. Pelay, Ugo & Luo, Lingai & Fan, Yilin & Stitou, Driss & Castelain, Cathy, 2019. "Integration of a thermochemical energy storage system in a Rankine cycle driven by concentrating solar power: Energy and exergy analyses," Energy, Elsevier, vol. 167(C), pages 498-510.
    10. Zhang, H.L. & Baeyens, J. & Degrève, J. & Cáceres, G. & Segal, R. & Pitié, F., 2014. "Latent heat storage with tubular-encapsulated phase change materials (PCMs)," Energy, Elsevier, vol. 76(C), pages 66-72.
    11. Mehrali, Mohammad & Tahan Latibari, Sara & Mehrali, Mehdi & Mahlia, Teuku Meurah Indra & Sadeghinezhad, Emad & Metselaar, Hendrik Simon Cornelis, 2014. "Preparation of nitrogen-doped graphene/palmitic acid shape stabilized composite phase change material with remarkable thermal properties for thermal energy storage," Applied Energy, Elsevier, vol. 135(C), pages 339-349.
    12. Izquierdo-Barrientos, M.A. & Sobrino, C. & Almendros-Ibáñez, J.A. & Barreneche, C. & Ellis, N. & Cabeza, L.F., 2016. "Characterization of granular phase change materials for thermal energy storage applications in fluidized beds," Applied Energy, Elsevier, vol. 181(C), pages 310-321.
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