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Recuperators investigation for high temperature supercritical carbon dioxide power generation cycles

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Autor
Gkountas A.A., Stamatelos A.M., Kalfas A.I.
Datum
2017
Language
en
DOI
10.1016/j.applthermaleng.2017.07.092
Schlagwort
Carbon dioxide
Computer software
Efficiency
Heat exchangers
Heat transfer
Recuperators
Thermoanalysis
Overall heat transfer coefficient
Power generation cycles
Printed circuit heat exchangers
Recompression cycles
Supercritical carbon dioxides
Supercritical CO
Thermo dynamic analysis
Thermodynamic model
Supercritical fluid extraction
Elsevier Ltd
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Zusammenfassung
Supercritical carbon dioxide (s-CO2) Brayton cycles are a promising technology for the next generation power conversion cycles, attaining equivalent or higher cycle efficiency compared to conventional power cycles at similar temperatures (550–750 °C). The recompression cycle attracts the main research interest among the s-CO2 layouts. Recompressing a fraction of the flow without heat rejection, results to an increase in thermal efficiency, while the majority of heat transfer occurs in recuperators. In this study, a thermodynamic analysis of a 600 MWth power cycle has been carried out using two different simulation tools to model the recompression system. The analysis focuses on the parameters that have the most significant impact on the components and cycle efficiency. A segmental analysis of the recuperators took place to assess the effect of flow characteristics on the heat transfer. Finally, a comparative analysis of the results of the two simulation tools versus the results of a reference cycle from literature is carried out, showing that the prediction of the overall heat transfer coefficient and recuperator effectiveness between the developed code and reference model has a maximum deviation of 4%, whereas the prediction deviation between the commercial software and reference model is about 2.8%. © 2017 Elsevier Ltd
URI
http://hdl.handle.net/11615/72523
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