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<div class="csl-entry">Nigitz, V. (2023). <i>Thermochemical energy storage - experimental investigation of the discharging process in a suspension reactor with a special focus on K2CO3</i> [Diploma Thesis, Technische Universität Wien]. reposiTUm. https://doi.org/10.34726/hss.2023.104330</div>
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dc.identifier.uri
https://doi.org/10.34726/hss.2023.104330
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/158271
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dc.description
Zusammenfassung in deutscher Sprache
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dc.description.abstract
Climate change and the recently added gas crisis require research and rapid implementation of new technologies for energy production or effective energy storage. One very promising technology is the principle of thermochemical energy storage. Here, surplus industrial waste heat or, quite simply, heat in the summer is used. The heat is stored in a storage system using a reversible reaction and released again when required by adding water. The advantages of this approach are the high storage densities as well as low thermal losses.In this work, the focus is on the investigation of the systems calcium chloride, copper sulfate, and potassium carbonate.The main part of this work deals with experiments to avoid agglomeration in the promising salt potassium carbonate. Potassium carbonate does not agglomerate when pure silicone oil is used as the suspension medium, but very strong agglomeration is observed when pure mineral oil is used. However, pure silicone oil is too expensive to be considered for industrial scale. Therefore, the first approach was to optimize oil mixing ratios and subsequently perform experiments with surface-treated particles up to the first coating experiments. In addition, the enthalpy of reaction was determined and the resilience of the individual methods was tested at low pressure. Furthermore, experiments were carried out at high pressure. For copper sulfate, the focus was on determining optimal conditions to obtain the highest possible reaction enthalpy and temperature rise. In addition, the influence of the rate concerning water addition was determined for all 3 systems.The results show that potassium carbonate in oil mixtures exhibits significantly lower agglomeration and that both the surface-treated particle experiments, as well as initial experiments on coating work without agglomeration, occur. Copper sulfate shows the highest enthalpy of reaction at high suspension temperature. The speed of water addition showed decisive influences only with the system potassium carbonate in pure silicone oil
en
dc.language
English
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dc.language.iso
en
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dc.rights.uri
http://rightsstatements.org/vocab/InC/1.0/
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dc.subject
Energiespeicherung
de
dc.subject
Thermochemie
de
dc.subject
Salzhydrate
de
dc.subject
Borsäure
de
dc.subject
Energy storage
en
dc.subject
thermochemical systems
en
dc.subject
salt hydrates
en
dc.subject
boric acid
en
dc.title
Thermochemical energy storage - experimental investigation of the discharging process in a suspension reactor with a special focus on K2CO3
en
dc.type
Thesis
en
dc.type
Hochschulschrift
de
dc.rights.license
In Copyright
en
dc.rights.license
Urheberrechtsschutz
de
dc.identifier.doi
10.34726/hss.2023.104330
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dc.contributor.affiliation
TU Wien, Österreich
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dc.rights.holder
Valentina Nigitz
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dc.publisher.place
Wien
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tuw.version
vor
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tuw.thesisinformation
Technische Universität Wien
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dc.contributor.assistant
Schmieder, Lena
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tuw.publication.orgunit
E166 - Institut für Verfahrenstechnik, Umwelttechnik und technische Biowissenschaften