4.7 Article

Energy conversion and hydrodynamic analysis of multi-degree-of-freedom wave energy converters integrated into a semi-submersible platform

期刊

ENERGY CONVERSION AND MANAGEMENT
卷 252, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.enconman.2021.115075

关键词

Wave energy converter; Multi-degree-of-freedom; Semi-submersible platform; Energy conversion; Numerical simulation; Physical experiment

资金

  1. National Natural Science Foundation of China [52111530137, 52025112, 51861130358]
  2. State Key Laboratory of Ocean Engineering, China (Shanghai Jiao Tong Uni-versity) [1905]
  3. Newton Advanced Fellowships
  4. NAF [\R1\180304]
  5. Royal Society

向作者/读者索取更多资源

The study introduces a multi-degree-of-freedom hybrid system integrating an oscillating wave surge converter and oscillating buoys into a semi-submersible platform. Numerical simulations and physical experiments demonstrate that the hybrid system enhances total power capture efficiency over a wider range of wave periods compared to a single converter system, while reducing wave loads on the platform.
The hybrid concept of multi-type wave energy converters provides viable solutions to improve the wave energy exploitation per-unit area and reduce the Levelised Cost of Electricity. In this paper, a multi-degree-of-freedom hybrid system combining an oscillating wave surge converter and two oscillating buoys, is proposed and inte-grated into a semi-submersible platform to be suitable for both nearshore and offshore zones. The hydrodynamic characteristics of the hybrid system is investigated by establishing a three-dimensional numerical wave tank in the context of computational fluid dynamics theory including dynamic overset grid scheme, with emphasis on its overall characteristic and respective characteristic of each device. The corresponding physical experiments are also performed to cross-check the numerical solutions, and help to further explain un-simulated phenomenons. By comparing with the single-degree-of-freedom wave energy system, the total power capture efficiency of the hybrid system increases over a broader range of wave periods due to the combination of different resonant periods. The optimal power take-off damping for the oscillating buoy and the oscillating wave surge converter decreases and is insensitive with wave height, respectively. The oscillating buoy device with larger radius and deeper draft demonstrates higher energy absorption which reduces wave loads on the platform. Both the total capture efficiency and the effective frequency bandwidth increase initially to maximum values and then decrease with increasing the geometric radius of the oscillating wave surge converter. The findings of this paper validate the feasibility of different-type wave energy converters integrated into floating platforms and show their synergy.

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