Energy, Exergy, and Techno-Economic Performance of an Enhanced Photovoltaic/Thermal Collector

This study experimentally investigates the energy, exergy, and economic performance of an enhanced photovoltaic/thermal (PVT) solar collector using micro-finned tubes, twisted-tape inserts, hybrid nanofluid, and nano-enhanced phase-change material (NPCM). Five collector configurations were tested at mass flow rates ranging from 0.008 to 0.042 kg/s. The best-performing configuration combined micro-finned tubes and twisted-tape inserts with SiC-NPCM and a hybrid nanofluid composed of 0.3 vol.% SiC and 0.3 vol.% Al2O3 dispersed in water. The experimental uncertainty was reported to be within ±3.5%. The optimized configuration achieved a maximum thermal efficiency of 87.5% and a peak useful thermal output of 189 W at a mass flow rate of 0.033 kg/s, corresponding to a 71.8% improvement compared with the baseline system. Active cooling of the photovoltaic back surface also increased the peak electrical power output to 23.5 W. The maximum overall exergy efficiency reached 12.85%, representing a 117.8% improvement compared with the conventional configuration. Although the micro-finned tubes and NPCM accounted for a substantial share of the initial capital cost, operation at a mass flow rate of 0.024 kg/s provided a favorable compromise between performance and cost, reducing the unit energy cost to USD 0.094/kWh while maintaining thermal-storage stability. The results indicate that the proposed hybrid cooling strategy can improve the thermal and thermodynamic performance of PVT collectors, although further validation under outdoor conditions is recommended.

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Publication Details

Journal
Solar
Published
2026-09-20
DOI
https://doi.org/10.3390/solar6050062
Primary Topic
Solar Thermal and Photovoltaic Systems
Type
article
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article

Energy, Exergy, and Techno-Economic Performance of an Enhanced Photovoltaic/Thermal Collector

Arman Ameen, Muntadher Mohammed Ali Saeed
Solar
Solar Thermal and Photovoltaic Systems
article

Energy, Exergy, and Techno-Economic Performance of an Enhanced Photovoltaic/Thermal Collector

Arman Ameen, Muntadher Mohammed Ali Saeed
article en

Abstract

This study experimentally investigates the energy, exergy, and economic performance of an enhanced photovoltaic/thermal (PVT) solar collector using micro-finned tubes, twisted-tape inserts, hybrid nanofluid, and nano-enhanced phase-change material (NPCM). Five collector configurations were tested at mass flow rates ranging from 0.008 to 0.042 kg/s. The best-performing configuration combined micro-finned tubes and twisted-tape inserts with SiC-NPCM and a hybrid nanofluid composed of 0.3 vol.% SiC and 0.3 vol.% Al2O3 dispersed in water. The experimental uncertainty was reported to be within ±3.5%. The optimized configuration achieved a maximum thermal efficiency of 87.5% and a peak useful thermal output of 189 W at a mass flow rate of 0.033 kg/s, corresponding to a 71.8% improvement compared with the baseline system. Active cooling of the photovoltaic back surface also increased the peak electrical power output to 23.5 W. The maximum overall exergy efficiency reached 12.85%, representing a 117.8% improvement compared with the conventional configuration. Although the micro-finned tubes and NPCM accounted for a substantial share of the initial capital cost, operation at a mass flow rate of 0.024 kg/s provided a favorable compromise between performance and cost, reducing the unit energy cost to USD 0.094/kWh while maintaining thermal-storage stability. The results indicate that the proposed hybrid cooling strategy can improve the thermal and thermodynamic performance of PVT collectors, although further validation under outdoor conditions is recommended.

SolarVol. 6(5)
University of Gävle (SE), Al-Furat Al-Awsat Technical University (IQ)
Affordable and clean energy
Openalex Percentile: Top 29%
Solar Thermal and Photovoltaic Systems
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