3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability

Abstract Supercritical carbon dioxide (sCO₂) is an effective working fluid in closed-loop power conversion cycles, offering significant advantages over traditional steam-based Rankine cycles. These cycles efficiently extract heat from sources such as gas turbine exhaust and industrial waste heat, co...

Full description

Saved in:
Bibliographic Details
Main Authors: Mahmood Ahmadi, Saadat Zirak
Format: Article
Language:English
Published: Nature Portfolio 2025-07-01
Series:Scientific Reports
Subjects:
Online Access:https://doi.org/10.1038/s41598-025-10469-1
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849343983068643328
author Mahmood Ahmadi
Saadat Zirak
author_facet Mahmood Ahmadi
Saadat Zirak
author_sort Mahmood Ahmadi
collection DOAJ
description Abstract Supercritical carbon dioxide (sCO₂) is an effective working fluid in closed-loop power conversion cycles, offering significant advantages over traditional steam-based Rankine cycles. These cycles efficiently extract heat from sources such as gas turbine exhaust and industrial waste heat, converting it into usable power. This paper presents a novel approach to enhance the performance of the sCO₂ recuperator cycle by integrating multi-effect desalination (MED) and organic Rankine cycles (ORC). This integration aims to improve both thermal efficiency and operational stability of the sCO₂ cycle. The MED process utilizes waste heat from the sCO₂ cycle to produce fresh water, thereby enhancing overall system efficiency, while the ORC optimizes energy recovery from low-grade heat sources. Through a comprehensive analysis of thermodynamic performance and system integration, this study demonstrates significant improvements in the stability and efficiency of the sCO₂ cycle. Various configurations, including simple, recuperator, and split cycles, are examined, focusing on key parameters such as gas turbine outlet temperature, smoke flow rate, and maximum cycle pressure. Results indicate that the efficiencies of the recuperator cycle, recuperator cycle with MED, recuperator cycle with ORC, and recuperator cycle with MED & ORC cycles are 19.26%, 30.89%, 25.51%, and 24.27%, respectively. The study emphasizes minimizing exergy losses to enhance environmental sustainability, leading to increased exergy efficiency and reduced emissions. The stability index correlates with exergy efficiency, indicating that higher values reflect greater stability and lower pollution levels. The sustainability indices for the different configurations are also reported, demonstrating the potential for improved output power and energy efficiency. In conclusion, this study highlights that advancements in sCO₂ cycles and the implementation of various configurations significantly enhance energy efficiency and environmental sustainability, while reducing pollution. The integration of additional cycles, such as Organic Rankine Cycle and Multi-Effect Desalination, further contributes to these improvements.
format Article
id doaj-art-2fc419bdac1c4c17a84d65f2337a6f81
institution Kabale University
issn 2045-2322
language English
publishDate 2025-07-01
publisher Nature Portfolio
record_format Article
series Scientific Reports
spelling doaj-art-2fc419bdac1c4c17a84d65f2337a6f812025-08-20T03:42:48ZengNature PortfolioScientific Reports2045-23222025-07-0115112610.1038/s41598-025-10469-13E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainabilityMahmood Ahmadi0Saadat Zirak1Faculty of Mechanical Engineering, Semnan UniversityFaculty of Mechanical Engineering, Semnan UniversityAbstract Supercritical carbon dioxide (sCO₂) is an effective working fluid in closed-loop power conversion cycles, offering significant advantages over traditional steam-based Rankine cycles. These cycles efficiently extract heat from sources such as gas turbine exhaust and industrial waste heat, converting it into usable power. This paper presents a novel approach to enhance the performance of the sCO₂ recuperator cycle by integrating multi-effect desalination (MED) and organic Rankine cycles (ORC). This integration aims to improve both thermal efficiency and operational stability of the sCO₂ cycle. The MED process utilizes waste heat from the sCO₂ cycle to produce fresh water, thereby enhancing overall system efficiency, while the ORC optimizes energy recovery from low-grade heat sources. Through a comprehensive analysis of thermodynamic performance and system integration, this study demonstrates significant improvements in the stability and efficiency of the sCO₂ cycle. Various configurations, including simple, recuperator, and split cycles, are examined, focusing on key parameters such as gas turbine outlet temperature, smoke flow rate, and maximum cycle pressure. Results indicate that the efficiencies of the recuperator cycle, recuperator cycle with MED, recuperator cycle with ORC, and recuperator cycle with MED & ORC cycles are 19.26%, 30.89%, 25.51%, and 24.27%, respectively. The study emphasizes minimizing exergy losses to enhance environmental sustainability, leading to increased exergy efficiency and reduced emissions. The stability index correlates with exergy efficiency, indicating that higher values reflect greater stability and lower pollution levels. The sustainability indices for the different configurations are also reported, demonstrating the potential for improved output power and energy efficiency. In conclusion, this study highlights that advancements in sCO₂ cycles and the implementation of various configurations significantly enhance energy efficiency and environmental sustainability, while reducing pollution. The integration of additional cycles, such as Organic Rankine Cycle and Multi-Effect Desalination, further contributes to these improvements.https://doi.org/10.1038/s41598-025-10469-1Supercritical carbon dioxide (sCO2) cycleEnergy analysisExergy analysisEnvironmental sustainability analysisMEDORC
spellingShingle Mahmood Ahmadi
Saadat Zirak
3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability
Scientific Reports
Supercritical carbon dioxide (sCO2) cycle
Energy analysis
Exergy analysis
Environmental sustainability analysis
MED
ORC
title 3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability
title_full 3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability
title_fullStr 3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability
title_full_unstemmed 3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability
title_short 3E analysis of sCO2 recuperator cycle with multi effect desalination and organic Rankine cycle to enhance environmental sustainability
title_sort 3e analysis of sco2 recuperator cycle with multi effect desalination and organic rankine cycle to enhance environmental sustainability
topic Supercritical carbon dioxide (sCO2) cycle
Energy analysis
Exergy analysis
Environmental sustainability analysis
MED
ORC
url https://doi.org/10.1038/s41598-025-10469-1
work_keys_str_mv AT mahmoodahmadi 3eanalysisofsco2recuperatorcyclewithmultieffectdesalinationandorganicrankinecycletoenhanceenvironmentalsustainability
AT saadatzirak 3eanalysisofsco2recuperatorcyclewithmultieffectdesalinationandorganicrankinecycletoenhanceenvironmentalsustainability