A Long-term Period Performance Assessment of a Building Integrated Photovoltaic System
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Date
2019
Authors
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Journal ISSN
Volume Title
Publisher
EDP Sciences
Open Access Color
Green Open Access
Yes
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Publicly Funded
No
Abstract
Building Integrated Photovoltaic (BIPV) systems can be defined as PV modules which can be integrated in building's envelope by replacing conventional building materials such as windows tiles etc. and have an impact on the functionality of the buildings. Considering the huge share (40%) of buildings in total energy consumption and nearly zero-energy building target of the European Union (EU) BIPV systems present a sustainable solution and have gained increased interest in last years. In this study the performance of a BIPV system which was installed on Feb. 8 2016 on the façade of a campus building at Yasar University Izmir Turkey within the framework a EU/FP7 project and has a capacity of 7.44 kW<inf>p</inf> is evaluated for a three-year period using first and second laws of thermodynamics. Within this context real (experimental) monthly and yearly electricity productions are determined and compared with the results obtained from the simulations. Energy and exergy efficiencies and performance ratios of the system are also calculated based on the cell and total areas. © 2019 Elsevier B.V. All rights reserved.
Description
Keywords
Building Materials, Buildings, Energy Utilization, Photovoltaic Cells, Thermodynamics, Building Integrated Photovoltaic, Building Integrated Photovoltaic System, Electricity Production, Energy And Exergy Efficiency, Performance Assessment, Second Laws Of Thermodynamics, Sustainable Solution, Total Energy Consumption, Zero Energy Buildings, Building materials, Buildings, Energy utilization, Photovoltaic cells, Thermodynamics, Building integrated photovoltaic, Building integrated photovoltaic system, Electricity production, Energy and exergy efficiency, Performance assessment, Second laws of thermodynamics, Sustainable solution, Total energy consumption, Zero energy buildings, Environmental sciences, GE1-350
Fields of Science
0211 other engineering and technologies, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology
Citation
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N/A
Source
2nd International Conference on Renewable Energy and Environment Engineering REEE 2019
Volume
122
Issue
Start Page
02007
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Scopus : 2
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Mendeley Readers : 13
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