Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System

In this paper, conventional and advanced exergy analyses are comprehensively introduced on an innovative transcritical CO<sub>2</sub> energy storage based trigeneration system. Conventional exergy analysis can quantify in an independent way the component exergy destruction. However, the...

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Main Authors: Wenxu Sun, Zhan Liu
Format: Article
Language:English
Published: MDPI AG 2020-11-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/10/23/8341
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spelling doaj-7b45416112044690b89c7c822bd039762020-11-27T07:56:14ZengMDPI AGApplied Sciences2076-34172020-11-01108341834110.3390/app10238341Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration SystemWenxu Sun0Zhan Liu1College of Electromechanical Engineering, Qingdao University of Science and Technology, Qingdao 266061, ChinaCollege of Electromechanical Engineering, Qingdao University of Science and Technology, Qingdao 266061, ChinaIn this paper, conventional and advanced exergy analyses are comprehensively introduced on an innovative transcritical CO<sub>2</sub> energy storage based trigeneration system. Conventional exergy analysis can quantify in an independent way the component exergy destruction. However, the advanced technology is able to evaluate the interactions among components and identify the tangible promotion potential by allowing for the technical and economic limitations. In this method, the component exergy destruction is separated into avoidable and unavoidable parts, as well as the endogenous/exogenous parts. Calculation of the split parts is carried out by utilizing the thermodynamic cycle-based approach. Results coming from conventional exergy analysis indicate that the first three largest exergy destructions are given by cold storage, compressor 1, and heat exchanger 3. However, advanced analysis results demonstrate that the cold storage, compressor 1, and compressor 2 should be given the first improvement priority in sequence by depending on the avoidable exergy destruction. The turbine efficiency produces a higher impact on overall exergy destruction than compressor efficiency. The pinch temperature in cold storage causes the highest effect on exergy destruction amongst all the heat exchangers. There exists an optimum value in the compressor inlet pressure and ambient temperature.https://www.mdpi.com/2076-3417/10/23/8341CO<sub>2</sub> energy storagetrigeneration systemadvanced exergy analysisparametric evaluation
collection DOAJ
language English
format Article
sources DOAJ
author Wenxu Sun
Zhan Liu
spellingShingle Wenxu Sun
Zhan Liu
Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System
Applied Sciences
CO<sub>2</sub> energy storage
trigeneration system
advanced exergy analysis
parametric evaluation
author_facet Wenxu Sun
Zhan Liu
author_sort Wenxu Sun
title Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System
title_short Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System
title_full Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System
title_fullStr Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System
title_full_unstemmed Parametric Assessment on the Advanced Exergy Performance of a CO<sub>2</sub> Energy Storage Based Trigeneration System
title_sort parametric assessment on the advanced exergy performance of a co<sub>2</sub> energy storage based trigeneration system
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2020-11-01
description In this paper, conventional and advanced exergy analyses are comprehensively introduced on an innovative transcritical CO<sub>2</sub> energy storage based trigeneration system. Conventional exergy analysis can quantify in an independent way the component exergy destruction. However, the advanced technology is able to evaluate the interactions among components and identify the tangible promotion potential by allowing for the technical and economic limitations. In this method, the component exergy destruction is separated into avoidable and unavoidable parts, as well as the endogenous/exogenous parts. Calculation of the split parts is carried out by utilizing the thermodynamic cycle-based approach. Results coming from conventional exergy analysis indicate that the first three largest exergy destructions are given by cold storage, compressor 1, and heat exchanger 3. However, advanced analysis results demonstrate that the cold storage, compressor 1, and compressor 2 should be given the first improvement priority in sequence by depending on the avoidable exergy destruction. The turbine efficiency produces a higher impact on overall exergy destruction than compressor efficiency. The pinch temperature in cold storage causes the highest effect on exergy destruction amongst all the heat exchangers. There exists an optimum value in the compressor inlet pressure and ambient temperature.
topic CO<sub>2</sub> energy storage
trigeneration system
advanced exergy analysis
parametric evaluation
url https://www.mdpi.com/2076-3417/10/23/8341
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