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Modeling of powder bed dynamics in thermochemical heat storage

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  • Prill, Torben
  • Latz, Arnulf
  • Jahnke, Thomas

Abstract

Thermochemical energy storage in the CaO/Ca(OH)2 system offers high energy capacity and near perfect reversibility and is one of the most promising technologies for thermal energy storage. In particular, fixed bed reactors are being investigated for their low cost and simplicity. However, upscaling of these reactors is hindered by changes in heat and mass transfer through the powder bed due to compaction and agglomeration of the powder bed during repeated cycling. Therefore, we develop a model for the dynamics of powder beds in thermochemical reactors in response to gas flow and expansion and contraction during repeated cycling. The model couples a model for the reactive transport in the powder bed to a large strain elasto-plastic model for its deformation and compaction. The constitutive relations for the powder bed are based on modified Drucker–Prager-Cap plasticity, including a hardening mechanism. For comparison with experiment, a parametrization of the model using only flow tester data is presented. The capabilities of the new model are demonstrated by simulating multiple charge/discharge cycles, where the numerical results show irreversible effects that cannot be simulated with static models, such as successive powder compaction during cycling. The numerical results are compared with experimental data where qualitative agreement is found. Furthermore, the new model is compared with existing static models and the differences between the models are discussed. Finally, we give an outlook on how the prediction of powder compaction can lead to the design of optimized reactor geometries and cycling protocols.

Suggested Citation

  • Prill, Torben & Latz, Arnulf & Jahnke, Thomas, 2025. "Modeling of powder bed dynamics in thermochemical heat storage," Applied Energy, Elsevier, vol. 383(C).
  • Handle: RePEc:eee:appene:v:383:y:2025:i:c:s0306261925000054
    DOI: 10.1016/j.apenergy.2025.125275
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    References listed on IDEAS

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    1. Han, X.C. & Xu, H.J. & Zhao, C.Y., 2022. "Design and performance evaluation of multi-layered reactor for calcium-based thermochemical heat storage with multi-physics coupling," Renewable Energy, Elsevier, vol. 195(C), pages 1324-1340.
    2. Wang, Mengyi & Chen, Li & He, Pu & Tao, Wen-Quan, 2019. "Numerical study and enhancement of Ca(OH)2/CaO dehydration process with porous channels embedded in reactors," Energy, Elsevier, vol. 181(C), pages 417-428.
    3. Ye, H. & Tao, Y.B. & Wu, Z.H., 2022. "Performance improvement of packed bed thermochemical heat storage by enhancing heat transfer and vapor transmission," Applied Energy, Elsevier, vol. 326(C).
    4. Wang, Mengyi & Chen, Li & Zhou, Yuhao & Tao, Wen-Quan, 2022. "Numerical simulation of the calcium hydroxide/calcium oxide system dehydration reaction in a shell-tube reactor," Applied Energy, Elsevier, vol. 312(C).
    5. Nagel, Thomas & Beckert, Steffen & Lehmann, Christoph & Gläser, Roger & Kolditz, Olaf, 2016. "Multi-physical continuum models of thermochemical heat storage and transformation in porous media and powder beds—A review," Applied Energy, Elsevier, vol. 178(C), pages 323-345.
    6. Nagel, T. & Shao, H. & Singh, A.K. & Watanabe, N. & Roßkopf, C. & Linder, M. & Wörner, A. & Kolditz, O., 2013. "Non-equilibrium thermochemical heat storage in porous media: Part 1 – Conceptual model," Energy, Elsevier, vol. 60(C), pages 254-270.
    7. Seitz, Gabriele & Helmig, Rainer & Class, Holger, 2020. "A numerical modeling study on the influence of porosity changes during thermochemical heat storage," Applied Energy, Elsevier, vol. 259(C).
    8. Risthaus, Kai & Bürger, Inga & Linder, Marc & Schmidt, Matthias, 2020. "Numerical analysis of the hydration of calcium oxide in a fixed bed reactor based on lab-scale experiments," Applied Energy, Elsevier, vol. 261(C).
    9. Wang, Wei & Shuai, Yong & Yang, Jiangyu & Lougou, Bachirou Guene & Huang, Yudong, 2023. "Heat transfer and heat storage characteristics of calcium hydroxide/oxide based on shell-tube thermochemical energy storage device," Renewable Energy, Elsevier, vol. 218(C).
    10. Michel, Benoit & Mazet, Nathalie & Mauran, Sylvain & Stitou, Driss & Xu, Jing, 2012. "Thermochemical process for seasonal storage of solar energy: Characterization and modeling of a high density reactive bed," Energy, Elsevier, vol. 47(1), pages 553-563.
    11. Ranjha, Qasim & Oztekin, Alparslan, 2017. "Numerical analyses of three-dimensional fixed reaction bed for thermochemical energy storage," Renewable Energy, Elsevier, vol. 111(C), pages 825-835.
    12. Nagel, T. & Shao, H. & Roßkopf, C. & Linder, M. & Wörner, A. & Kolditz, O., 2014. "The influence of gas–solid reaction kinetics in models of thermochemical heat storage under monotonic and cyclic loading," Applied Energy, Elsevier, vol. 136(C), pages 289-302.
    13. Wang, Wenqing & Kolditz, Olaf & Nagel, Thomas, 2017. "Parallel finite element modelling of multi-physical processes in thermochemical energy storage devices," Applied Energy, Elsevier, vol. 185(P2), pages 1954-1964.
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