LAPSE:2023.20188
Published Article

LAPSE:2023.20188
Photovoltaic Module Degradation Forecast Models for Onshore and Offshore Floating Systems
March 17, 2023
Abstract
The degradation trend of photovoltaic modules depends on the technology, manufacturing techniques and climatic conditions of the site where they are installed. Longer useful life of the PV modules means that they will be able to produce much more energy than was used to build them; thus, extending the useful life of the modules is beneficial for the environment and increases the cost effectiveness of PVs. The problem of land use has prompted the development of agrivoltaic systems to exploit the same land both for the production of energy and for agriculture, and on water surfaces such as lakes and dams (floating PV). The exploitation of floating PV systems in onshore and offshore areas is currently under study. This constitutes an opportunity for which many factors must be taken into account; a fundamental aspect is the environmental impact, on which some recent studies have focused. Another aspect is the impact of the marine environment on PV system reliability and durability, due to the stress on operating conditions. The aim of this preliminary study is to evaluate the influence of the marine environment on the degradation trend of photovoltaic modules, based on existing models whose inputs are meteorological data from offshore locations. The results obtained from the application of a cumulative exposure model unexpectedly showed a lower degradation value in the offshore environment than on the mainland: −0.95% and −3% values of power decay, respectively. The absolute value of power decay in the onshore case is higher than the typical values because the used model has to be revised, as the empirical coefficients of the model have to be calculated according to the installation environment. The empirical coefficients used in the model were obtained in environmental conditions different from those under study. In the offshore case, the degradation estimated by the model does not take into account some environmental factors typical of the marine environment. Model adaptations calibrated with datasets of plants in environmental conditions similar to those analyzed would allow for greater accuracy in the results.
The degradation trend of photovoltaic modules depends on the technology, manufacturing techniques and climatic conditions of the site where they are installed. Longer useful life of the PV modules means that they will be able to produce much more energy than was used to build them; thus, extending the useful life of the modules is beneficial for the environment and increases the cost effectiveness of PVs. The problem of land use has prompted the development of agrivoltaic systems to exploit the same land both for the production of energy and for agriculture, and on water surfaces such as lakes and dams (floating PV). The exploitation of floating PV systems in onshore and offshore areas is currently under study. This constitutes an opportunity for which many factors must be taken into account; a fundamental aspect is the environmental impact, on which some recent studies have focused. Another aspect is the impact of the marine environment on PV system reliability and durability, due to the stress on operating conditions. The aim of this preliminary study is to evaluate the influence of the marine environment on the degradation trend of photovoltaic modules, based on existing models whose inputs are meteorological data from offshore locations. The results obtained from the application of a cumulative exposure model unexpectedly showed a lower degradation value in the offshore environment than on the mainland: −0.95% and −3% values of power decay, respectively. The absolute value of power decay in the onshore case is higher than the typical values because the used model has to be revised, as the empirical coefficients of the model have to be calculated according to the installation environment. The empirical coefficients used in the model were obtained in environmental conditions different from those under study. In the offshore case, the degradation estimated by the model does not take into account some environmental factors typical of the marine environment. Model adaptations calibrated with datasets of plants in environmental conditions similar to those analyzed would allow for greater accuracy in the results.
Record ID
Keywords
floating photovoltaics, marine environment, offshore, PV degradation, PV degradation forecast, PV models
Subject
Suggested Citation
Mannino G, Tina GM, Cacciato M, Merlo L, Cucuzza AV, Bizzarri F, Canino A. Photovoltaic Module Degradation Forecast Models for Onshore and Offshore Floating Systems. (2023). LAPSE:2023.20188
Author Affiliations
Mannino G: Dipartimento di Ingegneria Elettrica Elettronica e Informatica, University of Catania, 95124 Catania, Italy
Tina GM: Dipartimento di Ingegneria Elettrica Elettronica e Informatica, University of Catania, 95124 Catania, Italy [ORCID]
Cacciato M: Dipartimento di Ingegneria Elettrica Elettronica e Informatica, University of Catania, 95124 Catania, Italy [ORCID]
Merlo L: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy
Cucuzza AV: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy
Bizzarri F: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy
Canino A: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy [ORCID]
Tina GM: Dipartimento di Ingegneria Elettrica Elettronica e Informatica, University of Catania, 95124 Catania, Italy [ORCID]
Cacciato M: Dipartimento di Ingegneria Elettrica Elettronica e Informatica, University of Catania, 95124 Catania, Italy [ORCID]
Merlo L: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy
Cucuzza AV: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy
Bizzarri F: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy
Canino A: Enel Green Power SpA, Viale Regina Margherita, 125, 00198 Rome, Italy [ORCID]
Journal Name
Energies
Volume
16
Issue
5
First Page
2117
Year
2023
Publication Date
2023-02-22
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en16052117, Publication Type: Journal Article
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LAPSE:2023.20188
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https://doi.org/10.3390/en16052117
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Mar 17, 2023
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