Thermal analysis of a BIPV system by various modelling approaches
•Experimental and numerical results relative to a rooftop BIPV system are compared.•Different thermal models of the BIPV system have been developed and implemented.•New correlations for convective and radiative heat transfer are proposed.•Thermal models accuracy depends on season weather conditions....
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Published in | Solar energy Vol. 155; pp. 1289 - 1299 |
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Main Authors | , , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
New York
Elsevier Ltd
01.10.2017
Pergamon Press Inc |
Subjects | |
Online Access | Get full text |
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Abstract | •Experimental and numerical results relative to a rooftop BIPV system are compared.•Different thermal models of the BIPV system have been developed and implemented.•New correlations for convective and radiative heat transfer are proposed.•Thermal models accuracy depends on season weather conditions.•All models allow achieving a good prediction of the PV modules temperature.
This work presents various models developed and implemented within the SOPHIA European project in order to thermally characterize PV modules in a rooftop BIPV configuration. Different approaches have been considered, including a linear model, lumped elements models and models that make use of commercial software solvers. The validation of the models performed by comparing the results of simulations with experimental data recorded on a test bench over an entire year is presented and discussed on a seasonal basis. The results have shown that all the models implemented allow achieving a good prediction of the PV modules back surface temperature, with the minimum value of the coefficient of determination R2 around 95% on a yearly basis. Moreover, the influence of season weather conditions and of the incident solar irradiance magnitude on the accuracy of the considered thermal models is highlighted. The major result of the present study is represented by the fact that it has been possible to perform a better thermal characterization of the BIPV module by tuning some of the heat transfer coefficients, such as those relative to the effects of the wind velocity, and to the evaluation of sky temperature. |
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AbstractList | •Experimental and numerical results relative to a rooftop BIPV system are compared.•Different thermal models of the BIPV system have been developed and implemented.•New correlations for convective and radiative heat transfer are proposed.•Thermal models accuracy depends on season weather conditions.•All models allow achieving a good prediction of the PV modules temperature.
This work presents various models developed and implemented within the SOPHIA European project in order to thermally characterize PV modules in a rooftop BIPV configuration. Different approaches have been considered, including a linear model, lumped elements models and models that make use of commercial software solvers. The validation of the models performed by comparing the results of simulations with experimental data recorded on a test bench over an entire year is presented and discussed on a seasonal basis. The results have shown that all the models implemented allow achieving a good prediction of the PV modules back surface temperature, with the minimum value of the coefficient of determination R2 around 95% on a yearly basis. Moreover, the influence of season weather conditions and of the incident solar irradiance magnitude on the accuracy of the considered thermal models is highlighted. The major result of the present study is represented by the fact that it has been possible to perform a better thermal characterization of the BIPV module by tuning some of the heat transfer coefficients, such as those relative to the effects of the wind velocity, and to the evaluation of sky temperature. This work presents various models developed and implemented within the SOPHIA European project in order to thermally characterize PV modules in a rooftop BIPV configuration. Different approaches have been considered, including a linear model, lumped elements models and models that make use of commercial software solvers. The validation of the models performed by comparing the results of simulations with experimental data recorded on a test bench over an entire year is presented and discussed on a seasonal basis. The results have shown that all the models implemented allow achieving a good prediction of the PV modules back surface temperature, with the minimum value of the coefficient of determination R2 around 95% on a yearly basis. Moreover, the influence of season weather conditions and of the incident solar irradiance magnitude on the accuracy of the considered thermal models is highlighted. The major result of the present study is represented by the fact that it has been possible to perform a better thermal characterization of the BIPV module by tuning some of the heat transfer coefficients, such as those relative to the effects of the wind velocity, and to the evaluation of sky temperature. |
Author | Baenas, Tomás Kubicek, Bernhard Zamini, Shokufeh Machado, Maider Merten, Jens Roca, Francesco Wagner, Martin Mongibello, Luigi Misara, Siwanand Carr, Anna Assoa, Ya Brigitte Sprenger, Wendelin Malbranche, Philippe |
Author_xml | – sequence: 1 givenname: Ya Brigitte surname: Assoa fullname: Assoa, Ya Brigitte email: ya-brigitte.assoa@cea.fr organization: CEA, LITEN, Department of Solar Technologies, F-73375 Le Bourget du Lac, France – sequence: 2 givenname: Luigi surname: Mongibello fullname: Mongibello, Luigi organization: ENEA, Piazzale E. Fermi, 80055 Portici, NA, Italy – sequence: 3 givenname: Anna surname: Carr fullname: Carr, Anna organization: ECN, P.O. Box 1, NL-1755 ZG Petten, Netherlands – sequence: 4 givenname: Bernhard surname: Kubicek fullname: Kubicek, Bernhard organization: Austrian Institute of Technology, AIT, Energy Department, Giefinggasse 2, Vienna 1210, Austria – sequence: 5 givenname: Maider surname: Machado fullname: Machado, Maider organization: Energy and Environment Division, TECNALIA Research & Innovation, Paseo Mikeletegi 2, 20009 San Sebastián, Spain – sequence: 6 givenname: Jens surname: Merten fullname: Merten, Jens organization: CEA, LITEN, Department of Solar Technologies, F-73375 Le Bourget du Lac, France – sequence: 7 givenname: Siwanand surname: Misara fullname: Misara, Siwanand organization: R&D Division Systems Engineering and Grid Integration – Fraunhofer IWES, Koenigstor 59, D-34119 Kassel, Germany – sequence: 8 givenname: Francesco surname: Roca fullname: Roca, Francesco organization: ENEA, Piazzale E. Fermi, 80055 Portici, NA, Italy – sequence: 9 givenname: Wendelin surname: Sprenger fullname: Sprenger, Wendelin organization: Division Thermal Systems and Buildings – Fraunhofer Institute for Solar Energy Systems ISE, Heidenhofstr. 2, 79110 Freiburg, Germany – sequence: 10 givenname: Martin surname: Wagner fullname: Wagner, Martin organization: Austrian Institute of Technology, AIT, Energy Department, Giefinggasse 2, Vienna 1210, Austria – sequence: 11 givenname: Shokufeh surname: Zamini fullname: Zamini, Shokufeh organization: Austrian Institute of Technology, AIT, Energy Department, Giefinggasse 2, Vienna 1210, Austria – sequence: 12 givenname: Tomás surname: Baenas fullname: Baenas, Tomás organization: Applied Mathematics Department, University of Alicante, Carretera de S. Vicente del Raspeig s/n, 03690 S. Vicente del Raspeig, Alicante, Spain – sequence: 13 givenname: Philippe surname: Malbranche fullname: Malbranche, Philippe organization: CEA, LITEN, Department of Solar Technologies, F-73375 Le Bourget du Lac, France |
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Snippet | •Experimental and numerical results relative to a rooftop BIPV system are compared.•Different thermal models of the BIPV system have been developed and... This work presents various models developed and implemented within the SOPHIA European project in order to thermally characterize PV modules in a rooftop BIPV... |
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SubjectTerms | Accuracy Building Integrated Photovoltaic (BIPV) Computer simulation Electrical energy output Heat transfer Heat transfer coefficients Irradiance Mathematical models Model accuracy Modules Photovoltaic cells Radiation Roofing Sky Solar energy Solvers Studies Temperature Thermal analysis Thermal modelling Thermodynamic properties Weather Wind effects Wind speed |
Title | Thermal analysis of a BIPV system by various modelling approaches |
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