Abstract
Clean energy development is an inevitable trend with the increasing demand for electricity. Among marine renewable energy sources, floating photovoltaic (FPV) is becoming a concern, which move to large-scale arrays progressively. Thus, it is necessary to understand the multi-body interaction effect. In this work, a multi-body FPV with four hexagon-type modules is adopted to investigate this phenomenon. Two models are established, including a multi-body model and a single-body model. Based on the composite hydrodynamic method that combines potential theory and the Morison formula, motion response and mooring load variations between two models are compared under combined wave and wind conditions. The results show that the multi-body interaction exhibits distinct characteristics for different modules and mooring lines. The motion becomes more significant when the multi-body model interaction is included, while the oscillations and maximum values of mooring tension decrease. Furthermore, we discuss the dynamic performance of the FPV under different wave parameters to explore the effect of environmental loads on the multi-body interaction.
Original language | English |
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Article number | 119302 |
Journal | Ocean Engineering |
Volume | 312 |
Issue number | Part 3 |
Early online date | 24 Sept 2024 |
DOIs | |
Publication status | Published - 15 Nov 2024 |
Funding
This study was mainly supported by the Project funded by the National Science Foundation of China (No. 52001230 and No. 52471298), China Postdoctoral Science Foundation (No. 2021T140506), Tianjin Enterprise Science and Technology Commissioner Project (No. 23YDTPJC00080), and State Key Laboratory of Alternate Electrical Power System with Renewable Energy Sources (No. LAPS24005). Their supports are greatly appreciated.
Keywords
- hexagon-type FPV
- multi-body model
- hydrodynamic performance
- dynamic response