LAPSE:2023.17421
Published Article

LAPSE:2023.17421
An Experimental Study on Transient Response of a Hybrid Thermoelectric−Photovoltaic System with Beam Splitter
March 6, 2023
Abstract
In the current study, the electrical responses of a thermoelectric (TE) module and a photovoltaic (PV) cell are investigated in three different systems, namely, a PV-only system, TE-only system, and hybrid TE-PV system with a beam splitter (TE-PV-BS), under variable solar irradiations demonstrating partly cloudy weather conditions. To enhance the deployment of solar energy, a predesigned beam splitter combined with the amorphous silicon TE and PV system is used in the experiments. The impact of the spectral beam splitting technology on the conversion performance of the TE module and PV cell in the hybrid system is studied and compared to the performance of the TE-only and PV-only systems. The electrical output parameters of the TE module and PV cell are obtained for the studied systems, and they are discussed in detail. The results of this work show that the power generated by the PV cell has a stepwise fluctuation similar to the variation in the concentrated solar radiation. Affected by its heat capacity, the power variation is monotonous with the TE module. The results moreover indicate that there is more power generated by the PV cell in the TE-PV-BS hybrid system than by the PV-only system. In comparison, the TE-only system produces more power than the TE module in the hybrid system. Furthermore, the TE-PV-BS hybrid system generates higher and more stable electrical power than the TE-only and PV-only systems, showing a significant advantage of the spectrum management concept.
In the current study, the electrical responses of a thermoelectric (TE) module and a photovoltaic (PV) cell are investigated in three different systems, namely, a PV-only system, TE-only system, and hybrid TE-PV system with a beam splitter (TE-PV-BS), under variable solar irradiations demonstrating partly cloudy weather conditions. To enhance the deployment of solar energy, a predesigned beam splitter combined with the amorphous silicon TE and PV system is used in the experiments. The impact of the spectral beam splitting technology on the conversion performance of the TE module and PV cell in the hybrid system is studied and compared to the performance of the TE-only and PV-only systems. The electrical output parameters of the TE module and PV cell are obtained for the studied systems, and they are discussed in detail. The results of this work show that the power generated by the PV cell has a stepwise fluctuation similar to the variation in the concentrated solar radiation. Affected by its heat capacity, the power variation is monotonous with the TE module. The results moreover indicate that there is more power generated by the PV cell in the TE-PV-BS hybrid system than by the PV-only system. In comparison, the TE-only system produces more power than the TE module in the hybrid system. Furthermore, the TE-PV-BS hybrid system generates higher and more stable electrical power than the TE-only and PV-only systems, showing a significant advantage of the spectrum management concept.
Record ID
Keywords
hybrid energy conversion, maximum power, photovoltaic cell, spectrum beam splitting, thermoelectric module, transient response
Subject
Suggested Citation
Mahmoudinezhad S, Cotfas PA, Cotfas DT, Skjølstrup EJH, Pedersen K, Rosendahl L, Rezania A. An Experimental Study on Transient Response of a Hybrid Thermoelectric−Photovoltaic System with Beam Splitter. (2023). LAPSE:2023.17421
Author Affiliations
Mahmoudinezhad S: AAU Energy, Aalborg University, Pontoppidanstraede 111, DK-9220 Aalborg, Denmark [ORCID]
Cotfas PA: Electrical Engineering and Computer Science Faculty, Transilvania University of Brasov, 500036 Brasov, Romania [ORCID]
Cotfas DT: Electrical Engineering and Computer Science Faculty, Transilvania University of Brasov, 500036 Brasov, Romania [ORCID]
Skjølstrup EJH: Department of Materials and Production, Aalborg University, Skjernvej 4A, DK-9220 Aalborg, Denmark [ORCID]
Pedersen K: Department of Materials and Production, Aalborg University, Skjernvej 4A, DK-9220 Aalborg, Denmark [ORCID]
Rosendahl L: AAU Energy, Aalborg University, Pontoppidanstraede 111, DK-9220 Aalborg, Denmark
Rezania A: AAU Energy, Aalborg University, Pontoppidanstraede 111, DK-9220 Aalborg, Denmark [ORCID]
Cotfas PA: Electrical Engineering and Computer Science Faculty, Transilvania University of Brasov, 500036 Brasov, Romania [ORCID]
Cotfas DT: Electrical Engineering and Computer Science Faculty, Transilvania University of Brasov, 500036 Brasov, Romania [ORCID]
Skjølstrup EJH: Department of Materials and Production, Aalborg University, Skjernvej 4A, DK-9220 Aalborg, Denmark [ORCID]
Pedersen K: Department of Materials and Production, Aalborg University, Skjernvej 4A, DK-9220 Aalborg, Denmark [ORCID]
Rosendahl L: AAU Energy, Aalborg University, Pontoppidanstraede 111, DK-9220 Aalborg, Denmark
Rezania A: AAU Energy, Aalborg University, Pontoppidanstraede 111, DK-9220 Aalborg, Denmark [ORCID]
Journal Name
Energies
Volume
14
Issue
23
First Page
8129
Year
2021
Publication Date
2021-12-03
ISSN
1996-1073
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Original Submission
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PII: en14238129, Publication Type: Journal Article
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LAPSE:2023.17421
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https://doi.org/10.3390/en14238129
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