Performance enhancement of Floating Photovoltaic (FPV) Solar panels via submerged extended surfaces

性能增强 材料科学 光伏系统 太阳能 性能预测 光电子学 能量转换效率 光学 太阳能电缆 功率(物理) 光伏 绩效改进 曲面(拓扑) 太阳能转换 能源性能 环境科学 工程物理 光电-热混合太阳能集热器 太阳能电池效率 可再生能源
作者
Jalees S.K. Azhari,Kemal Masera,Murat Fahrioğlu
出处
期刊:Solar Energy [Elsevier BV]
卷期号:310: 114489-114489
标识
DOI:10.1016/j.solener.2026.114489
摘要

• Effective cooling of Floating Solar Panels using water-submerged extended surfaces. • Increase in extended surfaces reduces PV module heat and boosts power gain. • Floating PV output increased in hot regions due to cooling. • LCOE reduces due to cooling at large plant capacity. • Average Power gain of 2.23 Wp (FPV) and 2.58 Wp (Land PV) with extended surfaces. Increase in temperature due to Climate change reduces the efficiency of Solar Photovoltaic systems. Stress on energy sector is increasing in meeting growing demand across the world. Several passive cooling strategies have been developed to mitigate thermal losses for solar photovoltaic panels. They contribute to uniform temperature distribution enhancing overall system performance. This study introduces a passive cooling approach for Floating Solar PV modules using water submerged extended surfaces installed at the back of module, through experimentation and simulation work. The extended surfaces enhance conductive heat transfer to water body helping to increase the overall heat transfer coefficient to reject excess heat to the surroundings. This will reduce the system temperature and improve electrical performance. It also investigates the techno-economic feasibility of adding water submerged aluminium extended surfaces at back of a FPV module in varying depth to enhance its performance in Cyprus. A comparative study is performed with similar PV module installed on land with and without extended surfaces. The proposed cooling approach is suitable for hot ambient temperature regions including Southern Europe, Middle East and Africa where ambient temperature is typically above optimum operational temperature range of PV modules. Results show extended surfaces drop average module temperature by 2.44 ℃ and 4.01 ℃ for FPV and land installed module, increasing average power gain by 2.23 W p and 2.58 W p respectively. LCOE for 1 MW p FPV and land installation is $0.082/kWh and $0.068/kWh and equals to $0.036/kWh for both from 500 MW p plant scale.

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