Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope

As a measure of energy “quality”, exergy is meaningful for comparing the potential for thermal storage. Systems containing the same amount of energy could have considerably different capabilities in matching a demand profile, and exergy measures this difference. Exergy stored in the envelope of buil...

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Main Authors: Valentina Bonetti, Georgios Kokogiannakis
Format: Article
Language:English
Published: MDPI AG 2017-01-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/10/1/95
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spelling doaj-613517a2a52640cba33e979eccdca94a2020-11-24T22:41:33ZengMDPI AGEnergies1996-10732017-01-011019510.3390/en10010095en10010095Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building EnvelopeValentina Bonetti0Georgios Kokogiannakis1Energy Systems Research Unit (ESRU), University of Strathclyde, Glasgow G1 1XJ, UKSustainable Buildings Research Centre (SBRC), University of Wollongong, Wollongong, NSW 2500, AustraliaAs a measure of energy “quality”, exergy is meaningful for comparing the potential for thermal storage. Systems containing the same amount of energy could have considerably different capabilities in matching a demand profile, and exergy measures this difference. Exergy stored in the envelope of buildings is central in sustainability because the environment could be an unlimited source of energy if its interaction with the envelope is optimised for maintaining the indoor conditions within comfort ranges. Since the occurring phenomena are highly fluctuating, a dynamic exergy analysis is required; however, dynamic exergy modelling is complex and has not hitherto been implemented in building simulation tools. Simplified energy and exergy assessments are presented for a case study in which thermal storage determines the performance of seven different wall types for utilising nocturnal ventilation as a passive cooling strategy. Hourly temperatures within the walls are obtained with the ESP-r software in free-floating operation and are used to assess the envelope exergy storage capacity. The results for the most suitable wall types were different between the exergy analysis and the more traditional energy performance indicators. The exergy method is an effective technique for selecting the construction type that results in the most favourable free-floating conditions through the analysed passive strategy.http://www.mdpi.com/1996-1073/10/1/95dynamic exergy analysisbuilding envelopeenergy storage
collection DOAJ
language English
format Article
sources DOAJ
author Valentina Bonetti
Georgios Kokogiannakis
spellingShingle Valentina Bonetti
Georgios Kokogiannakis
Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope
Energies
dynamic exergy analysis
building envelope
energy storage
author_facet Valentina Bonetti
Georgios Kokogiannakis
author_sort Valentina Bonetti
title Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope
title_short Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope
title_full Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope
title_fullStr Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope
title_full_unstemmed Dynamic Exergy Analysis for the Thermal Storage Optimization of the Building Envelope
title_sort dynamic exergy analysis for the thermal storage optimization of the building envelope
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2017-01-01
description As a measure of energy “quality”, exergy is meaningful for comparing the potential for thermal storage. Systems containing the same amount of energy could have considerably different capabilities in matching a demand profile, and exergy measures this difference. Exergy stored in the envelope of buildings is central in sustainability because the environment could be an unlimited source of energy if its interaction with the envelope is optimised for maintaining the indoor conditions within comfort ranges. Since the occurring phenomena are highly fluctuating, a dynamic exergy analysis is required; however, dynamic exergy modelling is complex and has not hitherto been implemented in building simulation tools. Simplified energy and exergy assessments are presented for a case study in which thermal storage determines the performance of seven different wall types for utilising nocturnal ventilation as a passive cooling strategy. Hourly temperatures within the walls are obtained with the ESP-r software in free-floating operation and are used to assess the envelope exergy storage capacity. The results for the most suitable wall types were different between the exergy analysis and the more traditional energy performance indicators. The exergy method is an effective technique for selecting the construction type that results in the most favourable free-floating conditions through the analysed passive strategy.
topic dynamic exergy analysis
building envelope
energy storage
url http://www.mdpi.com/1996-1073/10/1/95
work_keys_str_mv AT valentinabonetti dynamicexergyanalysisforthethermalstorageoptimizationofthebuildingenvelope
AT georgioskokogiannakis dynamicexergyanalysisforthethermalstorageoptimizationofthebuildingenvelope
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