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Enhancement of energy transfer efficiency for photovoltaic (PV) systems by cooling the panel surfaces

TLDR
In this article, an active fan-based cooling method is proposed to make ventilation underneath the solar module, where a portion of the output power at a prespecified high level of battery state-of-charge (SOC) is used to feed the fans.
Abstract
The thermal coefficient of a solar photovoltaic (PV) panel is a value that is provided with its specification sheet and tells us precisely the drop in panel performance with rising temperature. In desert climates, the PV panel temperatures are known to reach above 70 degrees centigrade. Exploring effective methods of increasing energy transfer efficiency is the issue that attracts researchers nowadays, which also contributes to reducing the cost of using solar photovoltaic (PV) systems with storage batteries. Temperature handling of solar PV modules is one of the techniques that improve the performance of such systems by cooling the bottom surface of the PV panels. This study initially reviews the effective methods of cooling the solar modules to select a proper, cost-effective, and easy to implement one. An active fan-based cooling method is considered in this research to make ventilation underneath the solar module. A portion of the output power at a prespecified high level of battery state-of-charge (SOC) is used to feed the fans. The developed comparator circuit is used to control the power ON/OFF of the fans. A Matlab-based simulation is employed to demonstrate the power rate improvements and that consumed by the fans. The results of simulations show that the presented approach can achieve significant improvements in the efficiency of PV systems that have storage batteries. The proposed method is demonstrated and evaluated for a 1.62 kW PV system. It is found from a simultaneous practical experiment on two identical PV panels of 180 W over a full day that the energy with the cooling system was 823.4 Wh, while that without cooling was 676 Wh. The adopted approach can play a role in enhancing energy sustainability.

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References
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Journal ArticleDOI

Development of a photovoltaic array model for use in power-electronics simulation studies

TL;DR: In this article, the authors present a circuit-based simulation model for a PV cell in order to allow the interaction between a proposed power converter (with its associated control arrangement) and the PV array to be studied.
Journal ArticleDOI

Improved PV/T solar collectors with heat extraction by forced or natural air circulation

TL;DR: In this paper, a suspended thin flat metallic sheet at the middle or fins at the back wall of an air duct was used as heat transfer augmentations in an air-cooled photovoltaic/thermal (PV/T) solar collector to improve its overall performance.
Journal ArticleDOI

Thermal modeling of a combined system of photovoltaic thermal (PV/T) solar water heater

TL;DR: In this paper, an integrated combined system of a photovoltaic (glass-glass) thermal (PV/T) solar water heater of capacity 200 l has been designed and tested in outdoor condition for composite climate of New Delhi.
Journal ArticleDOI

Estimation of photovoltaic module yearly temperature and performance based on Nominal Operation Cell Temperature calculations

TL;DR: In this paper, the simulation of module temperature from nominal operation cell temperature (NOCT) is widely used to easily estimate module performance along the year, as it is used to compare the performance of different module designs and can influence system predictions.
Journal ArticleDOI

A review on the development of photovoltaic/concentrated solar power (PV-CSP) hybrid systems

TL;DR: An exhaustive review on the state-of-the-art of the PV-CSP hybrid technologies, including the non-compact hybrid system, the solar cells, spectral beam filters, and high flux heat exchangers, and the hybrid system combining SBS and PV-topping technologies are presented.
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