Experimental study on a dual-channel air-cooled photovoltaic/thermal system with glass cover plates

Although photovoltaic/thermal (PV/T) systems offer a highly promising solution for simultaneous electricity generation and heat supply, traditional air-cooled designs often face a trade-off between PV (photovoltaic) cooling and efficient heat collection, particularly when heat flux distribution is uneven. To address this limitation, this study proposes a novel dual-channel air-cooled PV/T system featuring two independent airflow channels, each with distinct functional zones. Unlike conventional single-channel configurations, which treat the entire rear surface of the PV module as a single unit, the proposed design aims to optimize thermal management by separating the heat extraction process. Outdoor experiments under multiple operating conditions were conducted on a custom platform in Zhengzhou, China, to evaluate key performance metrics—including photothermal efficiency and temperature distribution—under varying solar irradiance and airflow velocity conditions. This study systematically compares the proposed dual-channel system with a conventional single-channel reference system. Research findings indicate that, for single-channel systems, higher airflow results in better photothermal efficiency. In comparative operating conditions, the optimal photothermal efficiency was achieved at an air velocity of 3.5 m/s. For dual-channel system, the upper air duct, due to its direct contact with the back of the PV panels, can remove waste heat more efficiently, its outlet temperature is typically 4–5 °C higher than that of the lower air duct. At the same operating conditions, the thermal efficiency of the single-channel configuration is 2.1 times that of the dual-channel system. Under high solar radiation intensity, rising ambient temperatures further enhanced thermal efficiency. The highest thermal efficiency of 28.3% was recorded at around 1:00 p.m. These findings contribute to the optimization of air-cooled PV-thermal systems and provide theoretical and practical guidance for future design and application.

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Publication Details

Journal
Case Studies in Thermal Engineering
Published
2026-08-28
DOI
https://doi.org/10.1016/j.csite.2026.108480
Primary Topic
Solar Thermal and Photovoltaic Systems
Type
article
Field-Weighted Citation Impact
0.00

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article

Experimental study on a dual-channel air-cooled photovoltaic/thermal system with glass cover plates

Zhangyang Kang, Shihao Zhang, Bing Liu, Mengwei Zhang et al.
Case Studies in Thermal Engineering
Solar Thermal and Photovoltaic Systems
article

Experimental study on a dual-channel air-cooled photovoltaic/thermal system with glass cover plates

Zhangyang Kang, Shihao Zhang, Bing Liu, Mengwei Zhang, Qiongqiong Yao, Jinsheng Zhang, Yong Wang
article en

Abstract

Although photovoltaic/thermal (PV/T) systems offer a highly promising solution for simultaneous electricity generation and heat supply, traditional air-cooled designs often face a trade-off between PV (photovoltaic) cooling and efficient heat collection, particularly when heat flux distribution is uneven. To address this limitation, this study proposes a novel dual-channel air-cooled PV/T system featuring two independent airflow channels, each with distinct functional zones. Unlike conventional single-channel configurations, which treat the entire rear surface of the PV module as a single unit, the proposed design aims to optimize thermal management by separating the heat extraction process. Outdoor experiments under multiple operating conditions were conducted on a custom platform in Zhengzhou, China, to evaluate key performance metrics—including photothermal efficiency and temperature distribution—under varying solar irradiance and airflow velocity conditions. This study systematically compares the proposed dual-channel system with a conventional single-channel reference system. Research findings indicate that, for single-channel systems, higher airflow results in better photothermal efficiency. In comparative operating conditions, the optimal photothermal efficiency was achieved at an air velocity of 3.5 m/s. For dual-channel system, the upper air duct, due to its direct contact with the back of the PV panels, can remove waste heat more efficiently, its outlet temperature is typically 4–5 °C higher than that of the lower air duct. At the same operating conditions, the thermal efficiency of the single-channel configuration is 2.1 times that of the dual-channel system. Under high solar radiation intensity, rising ambient temperatures further enhanced thermal efficiency. The highest thermal efficiency of 28.3% was recorded at around 1:00 p.m. These findings contribute to the optimization of air-cooled PV-thermal systems and provide theoretical and practical guidance for future design and application.

Case Studies in Thermal EngineeringVol. 86
State Grid Corporation of China (China) (CN), North China University of Water Resources and Electric Power (CN)
Division of Graduate Education
Affordable and clean energy
Openalex Percentile: Top 28%
Solar Thermal and Photovoltaic Systems
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