Xiao Liu
Development and Characterization of Mesoporous Silica-MgSO4-MgCl2 Binary Salt Composites for Low-Grade Heat Storage in Fluidized Bed Systems
Liu, Xiao; Yang, Fangming; Liu, Xin; Wang, Haomin; Wu, Yupeng
Authors
Dr FANGMING YANG Fangming.Yang@nottingham.ac.uk
Research Fellow
Xin Liu
Haomin Wang
Professor YUPENG WU yupeng.wu@nottingham.ac.uk
PROFESSOR OF BUILDING PHYSICS
Abstract
Achieving nearly zero-energy buildings requires the efficient utilization and storage of renewable energy. Salt-hydrate-based thermochemical energy storage (TCES) systems are promising due to their high heat storage capacity and minimal seasonal heat loss. However, challenges remain in their commercialization and large-scale application. For instance, TCES systems using magnesium sulphate (MgSO4) provide low temperature lifts due to slow reaction kinetics. Incorporating deliquescent salts like magnesium chloride (MgCl2) can enhance sorption performance but may introduce stability issues such as agglomeration and decomposition. This study presents a novel binary-salt composite combining MgSO4 and MgCl2 within commercial mesoporous silica (CMS) to address these challenges and enhance overall performance. The binary-salt composite powder, with a particle size range of 150–300 μm, is well-suited for use in fluidized-bed reactors, where fast mass and heat transfer promote efficient moisture adsorption, prevent uneven temperature distribution, and reduce agglomeration. Thermogravimetric analysis (TGA) was employed to evaluate the water sorption and desorption behaviour of MgCl2-MgSO4@CMS binary-salt composites with a total salt content of 50 wt% and salt mixing ratios of 3:1, 1:1, and 1:3. The corresponding water sorption capacities were 0.95, 0.68, and 0.57 g/g, respectively. In comparison, the MgSO4@CMS single-salt composite showed a lower water adsorption capacity of 0.47 g/g and required temperatures exceeding 150 °C for complete regeneration. Reactor-scale experiments demonstrated that the MgCl2-MgSO4@CMS composite with a 1:1 salt mixing ratio could be fluidized at low gas velocities on the order of 10−2 m/s, achieving a maximum temperature lift of 24.7 °C and an energy density of 1018 kJ/kg during hydration at 80% relative humidity and 30 °C. Additionally, the binary-salt composite showed good cyclic stability with less particle agglomeration compared to the MgCl2@CMS single-salt composite.
Citation
Liu, X., Yang, F., Liu, X., Wang, H., & Wu, Y. (2024). Development and Characterization of Mesoporous Silica-MgSO4-MgCl2 Binary Salt Composites for Low-Grade Heat Storage in Fluidized Bed Systems. Renewable Energy, 237(Part B), Article 121668. https://doi.org/10.1016/j.renene.2024.121668
Journal Article Type | Article |
---|---|
Acceptance Date | Oct 21, 2024 |
Online Publication Date | Oct 24, 2024 |
Publication Date | 2024-12 |
Deposit Date | Dec 16, 2024 |
Publicly Available Date | Dec 19, 2024 |
Journal | Renewable Energy |
Print ISSN | 0960-1481 |
Electronic ISSN | 1879-0682 |
Publisher | Elsevier |
Peer Reviewed | Peer Reviewed |
Volume | 237 |
Issue | Part B |
Article Number | 121668 |
DOI | https://doi.org/10.1016/j.renene.2024.121668 |
Keywords | Binary-salt composite; Fluidization; Hydration; Agglomeration; Temperature lift; Energy storage density (ESD) |
Public URL | https://nottingham-repository.worktribe.com/output/40985047 |
Publisher URL | https://www.sciencedirect.com/science/article/pii/S0960148124017361?via%3Dihub |
Additional Information | This article is maintained by: Elsevier; Article Title: Development and Characterization of Mesoporous Silica-MgSO4-MgCl2 Binary Salt Composites for Low-Grade Heat Storage in Fluidized Bed Systems; Journal Title: Renewable Energy; CrossRef DOI link to publisher maintained version: https://doi.org/10.1016/j.renene.2024.121668; Content Type: article; Copyright: © 2024 The Authors. Published by Elsevier Ltd. |
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Copyright Statement
© 2024 The Authors. Published by Elsevier Ltd.
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