Design and CFD Analysis of the Energy Efficiency of a Point Wave Energy Converter Using Passive Morphing Blades

被引:1
作者
Wang, Changlei [1 ]
Luo, Zirong [1 ]
Lu, Zhongyue [1 ]
Shang, Jianzhong [1 ]
Wang, Mangkuan [1 ]
Zhu, Yiming [1 ]
机构
[1] Natl Univ Def Technol, Coll Intelligence Sci & Technol, Changsha 410073, Peoples R China
基金
中国国家自然科学基金;
关键词
wave power; wave energy converter; power take-off; point absorption; passive morphing blade; OPTIMIZATION; PERFORMANCE;
D O I
10.3390/en16010204
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
A wave energy converter features the ability to convert wave energy into the electrical energy required by unmanned devices, and its energy-conversion efficiency is an essential aspect in practical applications. This paper proposes a novel point-absorption wave energy converter with passive morphing blades to meet the demand for improved energy-conversion efficiency. We first introduce its concept and design, with its blades forming their shape by adaptive changes with the direction of the water flow. Next, the three-dimensional geometrical-morphing model, energy-conversion model, and energy-conversion-efficiency model of the wave energy converter were established. Then, the CFD model was built to optimize the design parameters, and the simulation results revealed that the maximum conversion efficiency can be obtained at 90% solidity with 10 blades, a 40-60% load, and 20 similar to 25 degrees for the external deflection angle. The simulations also showed that the passive morphing-blade group provides similar to 40% higher torque and similar to 60% higher hydraulic efficiency than the flat-blade group.
引用
收藏
页数:14
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共 26 条
[1]   Control of small two-body heaving wave energy converters for ocean measurement applications [J].
Abdelkhalik, Ossama ;
Zou, Shangyan .
RENEWABLE ENERGY, 2019, 132 :587-595
[2]   A parameter study and optimization of two body wave energy converters [J].
Al Shami, Elie ;
Wang, Xu ;
Zhang, Ran ;
Zuo, Lei .
RENEWABLE ENERGY, 2019, 131 :1-13
[3]   Parametric study of two-body floating-point wave absorber [J].
Amiri A. ;
Panahi R. ;
Radfar S. .
Journal of Marine Science and Application, 2016, 15 (1) :41-49
[4]   Numerical evaluation of a two-body point absorber wave energy converter with a tuned inerter [J].
Asai, Takehiko ;
Sugiura, Keita .
RENEWABLE ENERGY, 2021, 171 :217-226
[5]   Comparison of wave-structure interaction dynamics of a submerged cylindrical point absorber with three degrees of freedom using potential flow and computational fluid dynamics models [J].
Dafnakis, Panagiotis ;
Bhalla, Amneet Pal Singh ;
Sirigu, Sergej Antonello ;
Bonfanti, Mauro ;
Bracco, Giovanni ;
Mattiazzo, Giuliana .
PHYSICS OF FLUIDS, 2020, 32 (09)
[6]   A study on a novel two-body floating wave energy converter [J].
Dai, Youming ;
Chen, Yangzhi ;
Xie, Longhan .
OCEAN ENGINEERING, 2017, 130 :407-416
[7]   Wave energy utilization: A review of the technologies [J].
Falcao, Antonio F. de O. .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2010, 14 (03) :899-918
[8]   Hydrodynamics of the IPS buoy wave energy converter including the effect of non-uniform acceleration tube cross section [J].
Falcao, Antonio F. O. ;
Candido, Jose J. ;
Justino, Paulo A. P. ;
Henriques, Joao C. C. .
RENEWABLE ENERGY, 2012, 41 :105-114
[9]   Wave energy parks with point-absorbers of different dimensions [J].
Goteman, Malin .
JOURNAL OF FLUIDS AND STRUCTURES, 2017, 74 :142-157
[10]   Aerofoil characteristics from 3D CFD rotor computations [J].
Johansen, J ;
Sorensen, NN .
WIND ENERGY, 2004, 7 (04) :283-294