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Performance Enhancement of Photovoltaic Panels Using Natural Porous Media for Thermal Cooling Management
by
Alahmer, Ali
, Badran, Omar
, Masalha, Ismail
in
Aluminum
/ Business metrics
/ Cooling
/ Design optimization
/ Efficiency
/ Energy consumption
/ Heat conductivity
/ Marble
/ Methods
/ Permeability
/ Porous materials
/ Temperature
/ Thermal energy
/ Water
2025
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Performance Enhancement of Photovoltaic Panels Using Natural Porous Media for Thermal Cooling Management
by
Alahmer, Ali
, Badran, Omar
, Masalha, Ismail
in
Aluminum
/ Business metrics
/ Cooling
/ Design optimization
/ Efficiency
/ Energy consumption
/ Heat conductivity
/ Marble
/ Methods
/ Permeability
/ Porous materials
/ Temperature
/ Thermal energy
/ Water
2025
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Do you wish to request the book?
Performance Enhancement of Photovoltaic Panels Using Natural Porous Media for Thermal Cooling Management
by
Alahmer, Ali
, Badran, Omar
, Masalha, Ismail
in
Aluminum
/ Business metrics
/ Cooling
/ Design optimization
/ Efficiency
/ Energy consumption
/ Heat conductivity
/ Marble
/ Methods
/ Permeability
/ Porous materials
/ Temperature
/ Thermal energy
/ Water
2025
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Performance Enhancement of Photovoltaic Panels Using Natural Porous Media for Thermal Cooling Management
Journal Article
Performance Enhancement of Photovoltaic Panels Using Natural Porous Media for Thermal Cooling Management
2025
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Overview
This study investigates the potential of low-cost, naturally available porous materials (PoMs), gravel, marble, flint, and sandstone, as thermal management for photovoltaic (PV) panels. Experiments were conducted in a controlled environment at a solar energy laboratory, where variables such as solar irradiance, ambient temperature, air velocity, and water flow were carefully regulated. A solar simulator delivering a constant irradiance of 1250 W/m2 was used to replicate solar conditions throughout each 3 h trial. The test setup involved polycrystalline PV panels (30 W rated) fitted with cooling channels filled with PoMs of varying porosities (0.35–0.48), evaluated across water flow rates ranging from 1 to 4 L/min. Experimental results showed that PoM cooling significantly outperformed both water-only and passive cooling. Among all the materials tested, sandstone with a porosity of 0.35 and a flow rate of 2.0 L/min demonstrated the highest cooling performance, reducing the panel surface temperature by 58.08% (from 87.7 °C to 36.77 °C), enhancing electrical efficiency by 57.87% (from 4.13% to 6.52%), and increasing power output by 57.81% (from 12.42 W to 19.6 W) compared to the uncooled panel. The enhanced heat transfer (HT) was attributed to improved conductive and convective interactions facilitated by lower porosity and optimal fluid velocity. Furthermore, the cooling system improved I–V characteristics by stabilizing short-circuit current and enhancing open-circuit voltage. Comparative analysis revealed material-dependent efficacy—sandstone > flint > marble > gravel—attributed to thermal conductivity gradients (sandstone: 5 W/m·K vs. gravel: 1.19 W/m·K). The configuration with 0.35 porosity and a 2.0 L/min flow rate proved to be the most effective, offering an optimal balance between thermal performance and resource usage, with an 8–10% efficiency gain over standard water cooling. This study highlights 2.0 L/min as the ideal flow rate, as higher rates lead to increased water usage without significant cooling improvements. Additionally, lower porosity (0.35) enhances convective heat transfer, contributing to improved thermal performance while maintaining energy efficiency.
Publisher
MDPI AG
Subject
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