Photovoltaic Warm Façades with Phase Change Materials in European Climates

Since façade-integrated photovoltaic (PV) modules heat up greatly, which reduces the efficiency of the PV, façade panels with PV and phase change materials (PCM) were developed. PCMs absorb a significant amount of thermal energy during the phase transition from solid to liquid, while maintaining a...

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Main Authors: Christian Popp, Dirk Weiß, Katja Tribulowski, Bernhard Weller
Format: Article
Language:English
Published: TU Delft Open 2021-04-01
Series:Journal of Facade Design and Engineering
Subjects:
Online Access:https://journals.open.tudelft.nl/jfde/article/view/5513
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spelling doaj-23ab22470b954800bcd5587898f5f2542021-04-07T12:12:03ZengTU Delft OpenJournal of Facade Design and Engineering2213-302X2213-30382021-04-019110.7480/jfde.2021.1.5513Photovoltaic Warm Façades with Phase Change Materials in European ClimatesChristian Popp0Dirk Weiß1Katja Tribulowski2Bernhard Weller3Technische Universität Dresden, Institute of Building ConstructionTechnische Universität Dresden, Institute of Building Climatology, Dresden, GermanyTechnische Universität Dresden, Institute of Building Climatology, Dresden, GermanyTechnische Universität Dresden, Institute of Building Construction, Dresden, Germany Since façade-integrated photovoltaic (PV) modules heat up greatly, which reduces the efficiency of the PV, façade panels with PV and phase change materials (PCM) were developed. PCMs absorb a significant amount of thermal energy during the phase transition from solid to liquid, while maintaining a specific melting temperature. This cools down the PV and increases the electrical yield. Numerical studies on PV-PCM warm façades without rear-ventilation have so far been missing. Therefore, a thermal and an electrical simulation model for PV-PCM warm façades were developed and validated. They were then used to analyse the yield increase of two PCM-types and -quantities in PV warm façades facing east, south, and west in Athens, Potsdam, and Helsinki. An annual yield increase of 1.2% to 8.5% for monocrystalline PV modules was determined. The maximum monthly yield increase is 8.0% in Helsinki, 11.4% in Potsdam, and 11.3% in Athens. The study shows that a case-specific selection of the appropriate type and quantity of PCM is necessary. Using the models, a design tool for PV-PCM warm façades will be developed. It will be validated with real monitoring data from PV-PCM façade test rigs at the Technische Universität Dresden and the National Technical University of Athens https://journals.open.tudelft.nl/jfde/article/view/5513Building-integrated photovoltaicsefficiency increasephase change materialsthermal simulationyield simulation
collection DOAJ
language English
format Article
sources DOAJ
author Christian Popp
Dirk Weiß
Katja Tribulowski
Bernhard Weller
spellingShingle Christian Popp
Dirk Weiß
Katja Tribulowski
Bernhard Weller
Photovoltaic Warm Façades with Phase Change Materials in European Climates
Journal of Facade Design and Engineering
Building-integrated photovoltaics
efficiency increase
phase change materials
thermal simulation
yield simulation
author_facet Christian Popp
Dirk Weiß
Katja Tribulowski
Bernhard Weller
author_sort Christian Popp
title Photovoltaic Warm Façades with Phase Change Materials in European Climates
title_short Photovoltaic Warm Façades with Phase Change Materials in European Climates
title_full Photovoltaic Warm Façades with Phase Change Materials in European Climates
title_fullStr Photovoltaic Warm Façades with Phase Change Materials in European Climates
title_full_unstemmed Photovoltaic Warm Façades with Phase Change Materials in European Climates
title_sort photovoltaic warm façades with phase change materials in european climates
publisher TU Delft Open
series Journal of Facade Design and Engineering
issn 2213-302X
2213-3038
publishDate 2021-04-01
description Since façade-integrated photovoltaic (PV) modules heat up greatly, which reduces the efficiency of the PV, façade panels with PV and phase change materials (PCM) were developed. PCMs absorb a significant amount of thermal energy during the phase transition from solid to liquid, while maintaining a specific melting temperature. This cools down the PV and increases the electrical yield. Numerical studies on PV-PCM warm façades without rear-ventilation have so far been missing. Therefore, a thermal and an electrical simulation model for PV-PCM warm façades were developed and validated. They were then used to analyse the yield increase of two PCM-types and -quantities in PV warm façades facing east, south, and west in Athens, Potsdam, and Helsinki. An annual yield increase of 1.2% to 8.5% for monocrystalline PV modules was determined. The maximum monthly yield increase is 8.0% in Helsinki, 11.4% in Potsdam, and 11.3% in Athens. The study shows that a case-specific selection of the appropriate type and quantity of PCM is necessary. Using the models, a design tool for PV-PCM warm façades will be developed. It will be validated with real monitoring data from PV-PCM façade test rigs at the Technische Universität Dresden and the National Technical University of Athens
topic Building-integrated photovoltaics
efficiency increase
phase change materials
thermal simulation
yield simulation
url https://journals.open.tudelft.nl/jfde/article/view/5513
work_keys_str_mv AT christianpopp photovoltaicwarmfacadeswithphasechangematerialsineuropeanclimates
AT dirkweiß photovoltaicwarmfacadeswithphasechangematerialsineuropeanclimates
AT katjatribulowski photovoltaicwarmfacadeswithphasechangematerialsineuropeanclimates
AT bernhardweller photovoltaicwarmfacadeswithphasechangematerialsineuropeanclimates
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