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  Hydride-based thermal energy storage

Adams, M., Buckley, C. E., Busch, M., Bunzel, R., Felderhoff, M., Heo, T. W., et al. (2022). Hydride-based thermal energy storage. Progress in Energy, 4(3): 032008. doi:10.1088/2516-1083/ac72ea.

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 Creators:
Adams, Marcus1, Author
Buckley, Craig E.2, Author
Busch, Markus3, Author
Bunzel, Robin4, Author
Felderhoff, Michael5, Author           
Heo, Tae Wook6, Author
Humphries, Terry D.2, Author
Jensen, Torben R.7, Author
Klug, Julian4, Author
Klug, Karl H.4, Author
Møller, Kasper T.8, Author
Paskevicius, Mark2, Author
Peil, Stefan9, Author
Peinecke, Kateryna5, Author           
Sheppard, Drew A.5, Author           
Stuart, Alastair D.1, Author
Urbanczyk, Robert9, Author           
Wang, Fei5, Author           
Walker, Gavin S.1, Author
Wood, Brandon C.6, Author
more..
Affiliations:
1Advanced Materials Research, University of Nottingham, Nottingham, United Kingdom, ou_persistent22              
2Physics and Astronomy, Curtin University, GPO Box U1987, Perth, WA 6845, Australia, ou_persistent22              
3MBS GmbH , 46514 Schermbeck, Germany, ou_persistent22              
4Westfälische Hochschule, 45487 Gelsenkirchen, Germany , ou_persistent22              
5Research Group Felderhoff, Max-Planck-Institut für Kohlenforschung, Max Planck Society, ou_3027887              
6Laboratory for Energy Applications for the Future (LEAF), Lawrence Livermore National Laboratory (LLNL), Livermore, CA 94550, United States of America , ou_persistent22              
7Department of Chemistry, Aarhus University , Aarhus, Denmark, ou_persistent22              
8Department of Biological and Chemical Engineering, Aarhus University, Aarhus, Denmark, ou_persistent22              
9Institut für Energie- und Umwelttechnik e. V. (IUTA), Bliersheimer Str. 58 – 60, 47229 Duisburg, Germany, ou_persistent22              

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 Abstract: The potential and research surrounding metal hydride (MH) based thermal energy storage is discussed, focusing on next generation thermo-chemical energy storage (TCES) for concentrated solar power. The site availability model to represent the reaction mechanisms of both the forward and backward MH reaction is presented, where this model is extrapolated to a small pilot scale reactor, detailing how a TCES could function/operate in a real-world setting using a conventional shell & tube reactor approach. Further, the important parameter of effective thermal conductivity is explored using an innovative multi-scale model, to providing extensive and relevant experimental data useful for reactor and system design. Promising high temperature MH material configurations may be tuned by either destabilisation, such as using additions to Ca and Sr based hydrides, or by stabilisation, such as fluorine addition to NaH, MgH2, or NaMgH3. This versatile thermodynamic tuning is discussed, including the challenges in accurately measuring the material characteristics at elevated temperatures (500 –700 °C). Attention to scale up is explored, including generic design and prototype considerations, and an example of a novel pilot-scale pillow-plate reactor currently in development; where materials used are discussed, overall tank design scope and system integration.

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Language(s): eng - English
 Dates: 2021-12-222022-05-242022-06-20
 Publication Status: Published online
 Pages: 27
 Publishing info: -
 Table of Contents: -
 Rev. Type: Peer
 Identifiers: DOI: 10.1088/2516-1083/ac72ea
 Degree: -

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Title: Progress in Energy
Source Genre: Journal
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Publ. Info: Bristol : IOP Science
Pages: - Volume / Issue: 4 (3) Sequence Number: 032008 Start / End Page: - Identifier: ISSN: 2516-1083
CoNE: https://pure.mpg.de/cone/journals/resource/2516-1083