Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage

In order to enhance the spreading of renewable energy sources in the Italian electric power market, as well as to promote self-production and to decrease the phase delay between energy production and consumption, energy storage solutions are catching on. Nowadays, in general, small size electric sto...

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Main Authors: Andrea Vallati, Chiara Colucci, Pawel Oclon
Format: Article
Language:English
Published: MDPI AG 2018-12-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/11/12/3405
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spelling doaj-1d9f3873ddf344aa8a41b49f2fe32b8a2020-11-24T22:08:52ZengMDPI AGEnergies1996-10732018-12-011112340510.3390/en11123405en11123405Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy StorageAndrea Vallati0Chiara Colucci1Pawel Oclon2DIAEE Department, Sapienza University of Rome, Via Eudossiana 18, 00184 Rome, ItalyDIAEE Department, Sapienza University of Rome, Via Eudossiana 18, 00184 Rome, ItalyInstitute of Thermal Power Engineering, Cracow University of Technology, al. Jana Pawla II 37, 31-864 Kracow, PolandIn order to enhance the spreading of renewable energy sources in the Italian electric power market, as well as to promote self-production and to decrease the phase delay between energy production and consumption, energy storage solutions are catching on. Nowadays, in general, small size electric storage batteries represent a quite diffuse technology, while air liquid-compressed energy storage solutions are used for high size. The goal of this paper is the development of a numerical model for small size storage, environmentally sustainable, to exploit the higher efficiency of the liquid pumping to compress air. Two different solutions were analyzed, to improve the system efficiency and to exploit the heat produced by the compression phase of the gas. The study was performed with a numerical model implemented in Matlab, by analyzing the variation of thermodynamical parameters during the compression and the expansion phases, making an energetic assessment for the whole system. The results show a good global efficiency, thus making the system competitive with the smallest size storage batteries.https://www.mdpi.com/1996-1073/11/12/3405energy analysiscompressed air energy storageheat exchangeelectric power generation
collection DOAJ
language English
format Article
sources DOAJ
author Andrea Vallati
Chiara Colucci
Pawel Oclon
spellingShingle Andrea Vallati
Chiara Colucci
Pawel Oclon
Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage
Energies
energy analysis
compressed air energy storage
heat exchange
electric power generation
author_facet Andrea Vallati
Chiara Colucci
Pawel Oclon
author_sort Andrea Vallati
title Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage
title_short Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage
title_full Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage
title_fullStr Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage
title_full_unstemmed Energetical Analysis of Two Different Configurations of a Liquid-Gas Compressed Energy Storage
title_sort energetical analysis of two different configurations of a liquid-gas compressed energy storage
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2018-12-01
description In order to enhance the spreading of renewable energy sources in the Italian electric power market, as well as to promote self-production and to decrease the phase delay between energy production and consumption, energy storage solutions are catching on. Nowadays, in general, small size electric storage batteries represent a quite diffuse technology, while air liquid-compressed energy storage solutions are used for high size. The goal of this paper is the development of a numerical model for small size storage, environmentally sustainable, to exploit the higher efficiency of the liquid pumping to compress air. Two different solutions were analyzed, to improve the system efficiency and to exploit the heat produced by the compression phase of the gas. The study was performed with a numerical model implemented in Matlab, by analyzing the variation of thermodynamical parameters during the compression and the expansion phases, making an energetic assessment for the whole system. The results show a good global efficiency, thus making the system competitive with the smallest size storage batteries.
topic energy analysis
compressed air energy storage
heat exchange
electric power generation
url https://www.mdpi.com/1996-1073/11/12/3405
work_keys_str_mv AT andreavallati energeticalanalysisoftwodifferentconfigurationsofaliquidgascompressedenergystorage
AT chiaracolucci energeticalanalysisoftwodifferentconfigurationsofaliquidgascompressedenergystorage
AT paweloclon energeticalanalysisoftwodifferentconfigurationsofaliquidgascompressedenergystorage
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