Analysis of Solar District Cooling systems: the Effect of Heat Rejection
The paper presents the performance assessment of a solar district cooling system with special attention to the heat rejection process. The investigation includes energetic, economic and environmental aspects. The district cooling network is driven by two-stage Li-Br absorption chillers coupled with...
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EDP Sciences
2020-01-01
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doaj-a55abaac7e504160b9fe561391705f522021-04-02T11:09:11ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011970801810.1051/e3sconf/202019708018e3sconf_ati2020_08018Analysis of Solar District Cooling systems: the Effect of Heat RejectionBrumana Giovanni0Franchini Giuseppe1Ghirardi Elisa2Perdichizzi Antonio3University of Bergamo, Department of Engineering and Applied SciencesUniversity of Bergamo, Department of Engineering and Applied SciencesUniversity of Bergamo, Department of Engineering and Applied SciencesUniversity of Bergamo, Department of Engineering and Applied SciencesThe paper presents the performance assessment of a solar district cooling system with special attention to the heat rejection process. The investigation includes energetic, economic and environmental aspects. The district cooling network is driven by two-stage Li-Br absorption chillers coupled with parabolic trough solar collectors. The whole system, including solar field, storage tanks and chilled water pipeline, has been modelled in Trnsys. The focus is on the heat rejection systems, and their impact on the performance of the cooling plant. Four different types of heat rejection systems are considered: Air Cooling (AC), Evaporative Cooling Tower (ECT), Groundwater Heat Exchanger (GHE) and Geothermal Boreholes (GB). The paper presents two case studies in the Gulf region: the warm climate is compared for two condition of humidity, dry (Riyadh) and humid (Abu Dhabi). Furthermore, the work presents a multivariable optimization procedure based on GenOpt software interacting with Trnsys model under the constraint of a 70% annual solar fraction. The best option resulted to be the one based on absorption chillers coupled with Groundwater Heat Exchanger in both locations. The annual power consumption is reduced by 83% in Abu Dhabi and 82% in Riyadh compared to conventional cooling systems.https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/57/e3sconf_ati2020_08018.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Brumana Giovanni Franchini Giuseppe Ghirardi Elisa Perdichizzi Antonio |
spellingShingle |
Brumana Giovanni Franchini Giuseppe Ghirardi Elisa Perdichizzi Antonio Analysis of Solar District Cooling systems: the Effect of Heat Rejection E3S Web of Conferences |
author_facet |
Brumana Giovanni Franchini Giuseppe Ghirardi Elisa Perdichizzi Antonio |
author_sort |
Brumana Giovanni |
title |
Analysis of Solar District Cooling systems: the Effect of Heat Rejection |
title_short |
Analysis of Solar District Cooling systems: the Effect of Heat Rejection |
title_full |
Analysis of Solar District Cooling systems: the Effect of Heat Rejection |
title_fullStr |
Analysis of Solar District Cooling systems: the Effect of Heat Rejection |
title_full_unstemmed |
Analysis of Solar District Cooling systems: the Effect of Heat Rejection |
title_sort |
analysis of solar district cooling systems: the effect of heat rejection |
publisher |
EDP Sciences |
series |
E3S Web of Conferences |
issn |
2267-1242 |
publishDate |
2020-01-01 |
description |
The paper presents the performance assessment of a solar district cooling system with special attention to the heat rejection process. The investigation includes energetic, economic and environmental aspects. The district cooling network is driven by two-stage Li-Br absorption chillers coupled with parabolic trough solar collectors. The whole system, including solar field, storage tanks and chilled water pipeline, has been modelled in Trnsys. The focus is on the heat rejection systems, and their impact on the performance of the cooling plant. Four different types of heat rejection systems are considered: Air Cooling (AC), Evaporative Cooling Tower (ECT), Groundwater Heat Exchanger (GHE) and Geothermal Boreholes (GB). The paper presents two case studies in the Gulf region: the warm climate is compared for two condition of humidity, dry (Riyadh) and humid (Abu Dhabi). Furthermore, the work presents a multivariable optimization procedure based on GenOpt software interacting with Trnsys model under the constraint of a 70% annual solar fraction. The best option resulted to be the one based on absorption chillers coupled with Groundwater Heat Exchanger in both locations. The annual power consumption is reduced by 83% in Abu Dhabi and 82% in Riyadh compared to conventional cooling systems. |
url |
https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/57/e3sconf_ati2020_08018.pdf |
work_keys_str_mv |
AT brumanagiovanni analysisofsolardistrictcoolingsystemstheeffectofheatrejection AT franchinigiuseppe analysisofsolardistrictcoolingsystemstheeffectofheatrejection AT ghirardielisa analysisofsolardistrictcoolingsystemstheeffectofheatrejection AT perdichizziantonio analysisofsolardistrictcoolingsystemstheeffectofheatrejection |
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