Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications

This study investigates the integration of a concentrated photovoltaic thermal (CPVT) module with a supercritical carbon dioxide (sCO₂) ejector refrigeration cycle to enhance sustainable cooling technologies. This research is significant as it explores the potential of sCO₂, a low-impact working flu...

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Main Authors: H. Hawi Ogaili, S. Khalilarya, A. Chitsaz, P. Mojaver
Format: Article
Language:English
Published: Babol Noshirvani University of Technology 2025-07-01
Series:Iranica Journal of Energy and Environment
Subjects:
Online Access:https://www.ijee.net/article_207442_806291dcda9dc464958017fe3d035f74.pdf
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author H. Hawi Ogaili
S. Khalilarya
A. Chitsaz
P. Mojaver
author_facet H. Hawi Ogaili
S. Khalilarya
A. Chitsaz
P. Mojaver
author_sort H. Hawi Ogaili
collection DOAJ
description This study investigates the integration of a concentrated photovoltaic thermal (CPVT) module with a supercritical carbon dioxide (sCO₂) ejector refrigeration cycle to enhance sustainable cooling technologies. This research is significant as it explores the potential of sCO₂, a low-impact working fluid, in improving cooling efficiency within a novel energy system. The system’s performance was evaluated using calculations conducted in EES software, focusing on energy and exergy efficiencies, exergy destruction, and economic viability. The results revealed that the integrated system achieved notable energy and exergy efficiencies of 30.62% and 11.43%, respectively. Exergy destruction analysis identified the CPVT module and the boiler as the main sources of inefficiency, accounting for 77% and 14% of the total exergy destruction. Economic analysis highlighted the CPVT module as the primary investment cost driver. Sensitivity analysis demonstrated that increasing the solar panel area led to higher exergy destruction and costs without significantly improving efficiencies, while increasing the pump discharge pressure enhanced thermal efficiency but reduced exergy efficiency. These findings suggest that optimizing pressure levels within 6.5 to 11 MPa can lead to substantial variations in system performance, with thermal and exergy efficiencies varying by 82% and 18%, respectively. The novelty of this work lies in its comprehensive integration of CPVT and sCO₂ technologies, offering new insights into efficiency trade-offs and economic considerations for advanced cooling systems, thereby extending beyond previous literature efforts.
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institution Kabale University
issn 2079-2115
2079-2123
language English
publishDate 2025-07-01
publisher Babol Noshirvani University of Technology
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series Iranica Journal of Energy and Environment
spelling doaj-art-50debeaf7bec49b894eb7b1f70ff33682025-01-22T10:46:58ZengBabol Noshirvani University of TechnologyIranica Journal of Energy and Environment2079-21152079-21232025-07-0116348449810.5829/ijee.2025.16.03.09207442Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential ApplicationsH. Hawi Ogaili0S. Khalilarya1A. Chitsaz2P. Mojaver3Department of Mechanical Engineering, Faculty of Engineering, Urmia University, Urmia, IranDepartment of Mechanical Engineering, Faculty of Engineering, Urmia University, Urmia, IranDepartment of Mechanical Engineering, Faculty of Engineering, Urmia University, Urmia, IranDepartment of Mechanical Engineering, Kermanshah University of Technology, Kermanshah, IranThis study investigates the integration of a concentrated photovoltaic thermal (CPVT) module with a supercritical carbon dioxide (sCO₂) ejector refrigeration cycle to enhance sustainable cooling technologies. This research is significant as it explores the potential of sCO₂, a low-impact working fluid, in improving cooling efficiency within a novel energy system. The system’s performance was evaluated using calculations conducted in EES software, focusing on energy and exergy efficiencies, exergy destruction, and economic viability. The results revealed that the integrated system achieved notable energy and exergy efficiencies of 30.62% and 11.43%, respectively. Exergy destruction analysis identified the CPVT module and the boiler as the main sources of inefficiency, accounting for 77% and 14% of the total exergy destruction. Economic analysis highlighted the CPVT module as the primary investment cost driver. Sensitivity analysis demonstrated that increasing the solar panel area led to higher exergy destruction and costs without significantly improving efficiencies, while increasing the pump discharge pressure enhanced thermal efficiency but reduced exergy efficiency. These findings suggest that optimizing pressure levels within 6.5 to 11 MPa can lead to substantial variations in system performance, with thermal and exergy efficiencies varying by 82% and 18%, respectively. The novelty of this work lies in its comprehensive integration of CPVT and sCO₂ technologies, offering new insights into efficiency trade-offs and economic considerations for advanced cooling systems, thereby extending beyond previous literature efforts.https://www.ijee.net/article_207442_806291dcda9dc464958017fe3d035f74.pdfconcentrated photovoltaic thermalejector refrigerationenergy efficiencyexergy analysissupercritical carbon dioxide
spellingShingle H. Hawi Ogaili
S. Khalilarya
A. Chitsaz
P. Mojaver
Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications
Iranica Journal of Energy and Environment
concentrated photovoltaic thermal
ejector refrigeration
energy efficiency
exergy analysis
supercritical carbon dioxide
title Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications
title_full Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications
title_fullStr Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications
title_full_unstemmed Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications
title_short Energy, Exergy, and Economic Performance Analysis of Integrated CPVT with Supercritical CO2 Ejector Refrigeration Cycle for Residential Applications
title_sort energy exergy and economic performance analysis of integrated cpvt with supercritical co2 ejector refrigeration cycle for residential applications
topic concentrated photovoltaic thermal
ejector refrigeration
energy efficiency
exergy analysis
supercritical carbon dioxide
url https://www.ijee.net/article_207442_806291dcda9dc464958017fe3d035f74.pdf
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AT skhalilarya energyexergyandeconomicperformanceanalysisofintegratedcpvtwithsupercriticalco2ejectorrefrigerationcycleforresidentialapplications
AT achitsaz energyexergyandeconomicperformanceanalysisofintegratedcpvtwithsupercriticalco2ejectorrefrigerationcycleforresidentialapplications
AT pmojaver energyexergyandeconomicperformanceanalysisofintegratedcpvtwithsupercriticalco2ejectorrefrigerationcycleforresidentialapplications