Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer

This study presents an evaluation of the energy exergy and thermo-economics of a hybrid power generation system that simultaneously produces power, heat, and hydrogen using solar and biomass energy. The system employs a polymer membrane electrolyzer for hydrogen production, with heat exchangers util...

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Main Authors: Kairat Kuterbekov, Asset Kabyshev, Kenzhebatyr Bekmyrza, Marzhan Kubenova
Format: Article
Language:English
Published: Elsevier 2024-02-01
Series:International Journal of Thermofluids
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2666202723002719
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author Kairat Kuterbekov
Asset Kabyshev
Kenzhebatyr Bekmyrza
Marzhan Kubenova
author_facet Kairat Kuterbekov
Asset Kabyshev
Kenzhebatyr Bekmyrza
Marzhan Kubenova
author_sort Kairat Kuterbekov
collection DOAJ
description This study presents an evaluation of the energy exergy and thermo-economics of a hybrid power generation system that simultaneously produces power, heat, and hydrogen using solar and biomass energy. The system employs a polymer membrane electrolyzer for hydrogen production, with heat exchangers utilized to attain the desired water temperature instead of conventional heaters. The steam turbine section is heated using exhaust gas from the combustion chamber and heated water from the condenser. Simulation of the system's thermodynamic, exergy, and exergy-economic analyses was conducted using the ESS tool. Analytical assessments were performed based on the provided data. The system achieves a power output of 25 MW, marking the highest level for solar-based systems. The results showed that the cost of the solar section, which constitutes around 68 % of the overall cost, rises with the number of mirrors. The exergy destruction rate of the entire system decreases from 25.71 MW to 24.95 MW. The total cost of operating the system increases by 175.5 dollars per hour at the highest temperature and decreases by 173 dollars per hour at the lowest temperature. The power consumption of electrolyzers directly affects the overall cost of the system, with a range of 0.05 to 0.07 MW resulting in total cost changes of 1.52 USD per hour. The transition to the work requiring the most energy by the electrolyzer causes a loss of 0.27 MW of exergy.
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spelling doaj.art-fdc19b07c3a0427f891be5aa90f159d02024-02-15T05:25:33ZengElsevierInternational Journal of Thermofluids2666-20272024-02-0121100556Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzerKairat Kuterbekov0Asset Kabyshev1Kenzhebatyr Bekmyrza2Marzhan Kubenova3L.N. Gumilyov Eurasian National University, 010008, Satpayev st. 2, Astana, KazakhstanCorresponding author.; L.N. Gumilyov Eurasian National University, 010008, Satpayev st. 2, Astana, KazakhstanL.N. Gumilyov Eurasian National University, 010008, Satpayev st. 2, Astana, KazakhstanL.N. Gumilyov Eurasian National University, 010008, Satpayev st. 2, Astana, KazakhstanThis study presents an evaluation of the energy exergy and thermo-economics of a hybrid power generation system that simultaneously produces power, heat, and hydrogen using solar and biomass energy. The system employs a polymer membrane electrolyzer for hydrogen production, with heat exchangers utilized to attain the desired water temperature instead of conventional heaters. The steam turbine section is heated using exhaust gas from the combustion chamber and heated water from the condenser. Simulation of the system's thermodynamic, exergy, and exergy-economic analyses was conducted using the ESS tool. Analytical assessments were performed based on the provided data. The system achieves a power output of 25 MW, marking the highest level for solar-based systems. The results showed that the cost of the solar section, which constitutes around 68 % of the overall cost, rises with the number of mirrors. The exergy destruction rate of the entire system decreases from 25.71 MW to 24.95 MW. The total cost of operating the system increases by 175.5 dollars per hour at the highest temperature and decreases by 173 dollars per hour at the lowest temperature. The power consumption of electrolyzers directly affects the overall cost of the system, with a range of 0.05 to 0.07 MW resulting in total cost changes of 1.52 USD per hour. The transition to the work requiring the most energy by the electrolyzer causes a loss of 0.27 MW of exergy.http://www.sciencedirect.com/science/article/pii/S2666202723002719ExergyThermo-economicsHydrogenBiomassPolymer membrane electrolyzerHybrid system
spellingShingle Kairat Kuterbekov
Asset Kabyshev
Kenzhebatyr Bekmyrza
Marzhan Kubenova
Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
International Journal of Thermofluids
Exergy
Thermo-economics
Hydrogen
Biomass
Polymer membrane electrolyzer
Hybrid system
title Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
title_full Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
title_fullStr Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
title_full_unstemmed Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
title_short Energy, exergy and thermo-economics analyses of hybrid solar, steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
title_sort energy exergy and thermo economics analyses of hybrid solar steam turbine and biomass gasification system for hydrogen production by polymer membrane electrolyzer
topic Exergy
Thermo-economics
Hydrogen
Biomass
Polymer membrane electrolyzer
Hybrid system
url http://www.sciencedirect.com/science/article/pii/S2666202723002719
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AT kenzhebatyrbekmyrza energyexergyandthermoeconomicsanalysesofhybridsolarsteamturbineandbiomassgasificationsystemforhydrogenproductionbypolymermembraneelectrolyzer
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