Waste heat recovery (WHR) can represent a good solution to increase overall performance of energy systems, even more in case of small systems. The exhaust gas at the outlet of micro gas turbines (MGTs) has still a large amount of thermal energy that can be converted into mechanical energy, because of its satisfactory temperature levels, even though the typical MGT layouts perform a recuperated cycle. In recent studies, supercritical CO2 Brayton Cycle (sCO2GT) turbines were studied as WHR systems whose thermal source was the exhausts from gas turbines. In particular, subject of this study is the 100 kW MGT Turbec T100. In this paper, the authors analyze innovative layouts, with comparison in terms of performance variations and cogenerative indices. The study was carried out through the adoption of a commercial software, Thermoflex, for the thermodynamic analysis of the layouts. The MGT model was validated in previous papers while the characteristic parameters of the bottoming sCO2GT were taken from the literature. The combined cycle layouts include simple and recompression sCO2bottoming cycles and different fuel energy sources like conventional natural gas and syngases derived by biomasses gasification. A further option of bottoming cycle was also considered, namely an organic Rankine cycle (ORC) system for the final conversion of waste heat from sCO2cycle into additional mechanical energy. Finally, the proposed plants have been compared, and the improvement in terms of flexibility and operating range have been highlighted.

A supercritical CO2 brayton cycle micro turbine for waste heat conversion: Optimization layout in cogenerative applications / Reale, F.; Sannino, R.; Tuccillo, R.. - 6:ASME PAPER GT2021_59654(2021). (Intervento presentato al convegno ASME Turbo Expo 2021: Turbomachinery Technical Conference and Exposition, GT 2021 tenutosi a TELEMATICO nel 2021) [10.1115/GT2021-59654].

A supercritical CO2 brayton cycle micro turbine for waste heat conversion: Optimization layout in cogenerative applications

Reale F.
;
Sannino R.;Tuccillo R.
2021

Abstract

Waste heat recovery (WHR) can represent a good solution to increase overall performance of energy systems, even more in case of small systems. The exhaust gas at the outlet of micro gas turbines (MGTs) has still a large amount of thermal energy that can be converted into mechanical energy, because of its satisfactory temperature levels, even though the typical MGT layouts perform a recuperated cycle. In recent studies, supercritical CO2 Brayton Cycle (sCO2GT) turbines were studied as WHR systems whose thermal source was the exhausts from gas turbines. In particular, subject of this study is the 100 kW MGT Turbec T100. In this paper, the authors analyze innovative layouts, with comparison in terms of performance variations and cogenerative indices. The study was carried out through the adoption of a commercial software, Thermoflex, for the thermodynamic analysis of the layouts. The MGT model was validated in previous papers while the characteristic parameters of the bottoming sCO2GT were taken from the literature. The combined cycle layouts include simple and recompression sCO2bottoming cycles and different fuel energy sources like conventional natural gas and syngases derived by biomasses gasification. A further option of bottoming cycle was also considered, namely an organic Rankine cycle (ORC) system for the final conversion of waste heat from sCO2cycle into additional mechanical energy. Finally, the proposed plants have been compared, and the improvement in terms of flexibility and operating range have been highlighted.
2021
978-0-7918-8499-7
A supercritical CO2 brayton cycle micro turbine for waste heat conversion: Optimization layout in cogenerative applications / Reale, F.; Sannino, R.; Tuccillo, R.. - 6:ASME PAPER GT2021_59654(2021). (Intervento presentato al convegno ASME Turbo Expo 2021: Turbomachinery Technical Conference and Exposition, GT 2021 tenutosi a TELEMATICO nel 2021) [10.1115/GT2021-59654].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/861297
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