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February 8, 2026physica status solidi (a)0 citationsOpen Access

Photovoltaic Module Heat Dissipation Enhancement by Optimizing Backsheet Encapsulation Material's Thermal Conductivity and Thickness: A 3D FEM Model and Its Experimental Validation

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WLWentao LiYHYongtai HeXZXing Zhu

Key Points

  • The research aims to improve heat dissipation in photovoltaic modules by optimizing the thermal properties of encapsulation materials.
  • Developed a 3D heat transfer model using finite element method (FEM)
  • Examined the effects of thermal conductivity and thickness of encapsulation materials
  • Manufactured and tested thermally conductive PV modules
  • Analyzed the impact of thermally conductive materials in a phase change material (PCM) system
  • Increased thermal conductivity reduced solar cell temperatures by up to 2.12°C
  • Thickness of encapsulation correlated with a temperature rise of 0.68°C·mm−1
  • Thermally conductive materials extended cooling duration in PV/PCM systems by 19 minutes
  • Maximum temperature reduction achieved was 3.83°C
  • Simulation results aligned closely with experimental data, confirming the effectiveness of encapsulation optimization

Abstract

To enhance the heat dissipation performance and operational stability of photovoltaic (PV) modules, this study developed a three‐dimensional heat transfer model of PV modules using the finite element method. It systematically examined the impacts of the thermal conductivity and thickness of encapsulation materials, as well as environmental factors, on the temperature characteristics of solar cells. Experimental validation was carried out by manufacturing thermally conductive PV modules, and the application effect of thermally conductive materials in the PV/PCM (phase change material) system was concurrently analyzed. Increasing the thermal conductivity of the backsheet encapsulation material for crystalline silicon cells can notably reduce the front temperature of PV modules, the solar cell temperature, and the temperature difference between the front and rear sides. Meanwhile, it can raise the module rear side temperature and improve the uniformity of the temperature distribution. Specifically, when the thermal conductivity reaches 1.0 W·m −1 K −1 , the temperature of solar cells can be effectively controlled. For example, under natural environmental conditions, the maximum temperature reduction of solar cells reaches 2.12°C. Meanwhile, the solar cell temperature increases with the thickness of the encapsulation material, at a rate of 0.68°C·mm −1 . In the PV/PCM system, the thermally conductive material can extend the time the cell temperature remains below 40°C by 19 min, achieving a maximum temperature reduction of 3.83°C. The experimental results are generally consistent with the simulation results, confirming that optimizing the encapsulation material parameters can effectively enhance the heat dissipation performance of PV modules and thereby improve their efficiency.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/6988291e0fc35cd7a8849366https://doi.org/10.1002/pssa.202500740
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