Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells

The low cooling efficiency of photovoltaic panels integrated into building façades restricts their electrical performance. The innovative approach of a dual-fluid photovoltaic-thermal system (BFPVT), incorporating bi-fluid cooling exchangers, appears to be a promising solution for jointly optimizing...

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Main Authors: Kokou Aménuvéla Toka, Yawovi Nougbléga, Komi Apélété Amou
Format: Article
Language:English
Published: AIMS Press 2024-10-01
Series:AIMS Energy
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Online Access:https://www.aimspress.com/article/doi/10.3934/energy.2024051
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author Kokou Aménuvéla Toka
Yawovi Nougbléga
Komi Apélété Amou
author_facet Kokou Aménuvéla Toka
Yawovi Nougbléga
Komi Apélété Amou
author_sort Kokou Aménuvéla Toka
collection DOAJ
description The low cooling efficiency of photovoltaic panels integrated into building façades restricts their electrical performance. The innovative approach of a dual-fluid photovoltaic-thermal system (BFPVT), incorporating bi-fluid cooling exchangers, appears to be a promising solution for jointly optimizing the electrical and thermal performance of PVT systems. However, despite the introduction of air heat shields to improve this performance, their limited efficiency makes them less competitive. We present a photovoltaic-thermal (PVT) system with a two-channel heat exchanger. The upper channel contains a stagnant fluid, which acts as a heat shield, while the lower, open channel ensures the continuous circulation or evacuation of heat transfer air. A copper metal plate separates the two channels. We examined the impact of various fluids employed as heat shields, including neon, argon, and xenon, in comparison to air, on the thermal and electrical performance of the collector. We employed numerical modeling of convective and conductive transfers to assess the average thermal efficiency of the BFPVT and the rise in PV temperature in the analyzed configuration. The equations were discretized using the implicit finite difference method and solved using the Thomas and Gauss-Seidel algorithms. The results demonstrated an 18% enhancement in thermal efficiency with the utilization of neon. In contrast, the employment of argon and xenon markedly reduced the mean temperature of photovoltaic cells by 4.82 ℃ and 4.87 ℃, respectively. This led to an increase in their electrical efficiency by 0.33% in comparison to air. Thus, argon is regarded as the optimal choice for optimizing electrical efficiency, taking into account both economic and environmental considerations.
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spelling doaj-art-e50f19259ee54c57a5dd64aa598b2eb82025-01-24T01:35:02ZengAIMS PressAIMS Energy2333-83342024-10-011251075109510.3934/energy.2024051Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cellsKokou Aménuvéla Toka0Yawovi Nougbléga1Komi Apélété Amou2Solar Energy Laboratory, Department of Physics, Faculty of Sciences, University of Lomé, TogoSolar Energy Laboratory, Department of Physics, Faculty of Sciences, University of Lomé, TogoSolar Energy Laboratory, Department of Physics, Faculty of Sciences, University of Lomé, TogoThe low cooling efficiency of photovoltaic panels integrated into building façades restricts their electrical performance. The innovative approach of a dual-fluid photovoltaic-thermal system (BFPVT), incorporating bi-fluid cooling exchangers, appears to be a promising solution for jointly optimizing the electrical and thermal performance of PVT systems. However, despite the introduction of air heat shields to improve this performance, their limited efficiency makes them less competitive. We present a photovoltaic-thermal (PVT) system with a two-channel heat exchanger. The upper channel contains a stagnant fluid, which acts as a heat shield, while the lower, open channel ensures the continuous circulation or evacuation of heat transfer air. A copper metal plate separates the two channels. We examined the impact of various fluids employed as heat shields, including neon, argon, and xenon, in comparison to air, on the thermal and electrical performance of the collector. We employed numerical modeling of convective and conductive transfers to assess the average thermal efficiency of the BFPVT and the rise in PV temperature in the analyzed configuration. The equations were discretized using the implicit finite difference method and solved using the Thomas and Gauss-Seidel algorithms. The results demonstrated an 18% enhancement in thermal efficiency with the utilization of neon. In contrast, the employment of argon and xenon markedly reduced the mean temperature of photovoltaic cells by 4.82 ℃ and 4.87 ℃, respectively. This led to an increase in their electrical efficiency by 0.33% in comparison to air. Thus, argon is regarded as the optimal choice for optimizing electrical efficiency, taking into account both economic and environmental considerations.https://www.aimspress.com/article/doi/10.3934/energy.2024051numerical studyphotovoltaic/thermal panelsbi-fluid collectormixed convectionthermoelectric performance
spellingShingle Kokou Aménuvéla Toka
Yawovi Nougbléga
Komi Apélété Amou
Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells
AIMS Energy
numerical study
photovoltaic/thermal panels
bi-fluid collector
mixed convection
thermoelectric performance
title Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells
title_full Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells
title_fullStr Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells
title_full_unstemmed Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells
title_short Optimization of hybrid photovoltaic-thermal systems integrated into buildings: Impact of bi-fluid exchangers and filling gases on the thermal and electrical performances of solar cells
title_sort optimization of hybrid photovoltaic thermal systems integrated into buildings impact of bi fluid exchangers and filling gases on the thermal and electrical performances of solar cells
topic numerical study
photovoltaic/thermal panels
bi-fluid collector
mixed convection
thermoelectric performance
url https://www.aimspress.com/article/doi/10.3934/energy.2024051
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