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  4. Analysis of the Potential for Enhancing the Efficiency of a Floating Photovoltaic (FPV) System
 
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Analysis of the Potential for Enhancing the Efficiency of a Floating Photovoltaic (FPV) System

Journal
Journal of Marine Science and Technology (Taiwan)
Journal Volume
32
Journal Issue
2
Start Page
181
End Page
193
ISSN
2709-6998
Date Issued
2024-07-15
Author(s)
How-Ping Wu
Ching-Yi Tseng
Chuan-Chung Jen
Yuan-Ching Chiang
SIH-LI CHEN  
DOI
10.51400/2709-6998.2740
DOI
10.51400/2709-6998.2740
URI
https://www.scopus.com/record/display.uri?eid=2-s2.0-85207227679&origin=resultslist
https://scholars.lib.ntu.edu.tw/handle/123456789/723179
Abstract
This study examined the power generation capabilities of FPV systems and the advantages of employing active cooling on floating solar panels. Floating solar panels exhibit improved efficiency due to operating at lower temperatures facilitated by the cooling effect of water evaporation. Additionally, the high availability of water renders the application of the active cooling technique economically viable. This study developed a comprehensive simulation of a floating solar system, integrating a mathematical model to validate experimental findings and a temperature model derived from an energy equation specific to floating solar panels. This model calculates the heat transfer among the three different materials in the solar panels and accounts for various boundary conditions. This model exhibits better accuracy performance than other temperature models, such as the NOCT or the lumped system model. Notably, it demonstrates a lower root-mean-square error (RMSE) of 0.97C in the passive cooling mode, 2.36C in the water film cooling mode, and 1.71C in the water spray cooling mode. Therefore, this model effectively predicts solar panels’ surface temperature for different cooling methods. The experimental results demonstrate that floating solar panels maintain an average temperature of 4C lower than rooftop solar panels, resulting in a 3.27% power increase. With water film cooling, the average temperature decreased by 19.39C than without water cooling, leading to a 6.70% increase in power generation. After deducting the energy consumption of the cooling system, the net energy gain reached 5.27%. Similarly, with water spray cooling, the average temperature decreased by 16.29C, resulting in a 6.38 increase in power generation, with a net energy gain of 3.93%.
Subjects
Active cooling on solar panels
Floating solar photovoltaic system
Optimized operating temperature of active cooling
Solar panel efficiency enhancement
SDGs

[SDGs]SDG7

Publisher
National Taiwan Ocean University
Type
journal article

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To permanently archive and promote researcher profiles and scholarly works, Library integrates the services of “NTU Repository” with “Academic Hub” to form NTU Scholars.

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