Three-dimensional numerical analysis on blade response of a vertical-axis tidal current turbine under operational conditions

2014 ◽  
Vol 6 (4) ◽  
pp. 043123 ◽  
Author(s):  
By Ye Li ◽  
Naveen Karri ◽  
Qi Wang
Author(s):  
Jun Leng ◽  
Ye Li

In recent years, tidal current energy has gained wide attention for its abundant resource and environmentally friendly production. This study focuses on analyzing dynamic behavior of a three-bladed vertical axis tidal current turbine. The multibody dynamics code MBDyn is used in the numerical simulation. It performs the integrated simulation and analysis of nonlinear mechanical, aeroelastic, hydraulic and control problems by numerical integration. In this study, tidal current turbine is idealized as an assembly of flexible beams including axis of rotation, arms and blades. We firstly conduct a modal analysis on the tidal current turbine and validate the model with the results obtained by ANSYS. The natural frequencies of blades with different size parameters are compared and the corresponding mode shapes are presented. Next, a parametric study was performed to investigate the effect of internal force on the dynamic response. It is concluded that the proposed method is accurate and efficient for structural analysis of tidal current turbine and this flexible multibody model can be used in the fluid-structure-interaction analysis in the future.


2020 ◽  
Vol 210 ◽  
pp. 107320 ◽  
Author(s):  
Wang Hua-Ming ◽  
Qu Xiao-Kun ◽  
Chen Lin ◽  
Tu Lu-Qiong ◽  
Wu Qiao-Rui

Author(s):  
Ye Li ◽  
Sander M. Calisal

Tidal power technology has been dwarfed once to take hold in the late 1970’s, because the early generations were expensive at small scale and some applications (such as barrages) had negative environmental impacts. In a similar working manner as a wind turbine, a tidal current turbine has been recognized as a promising ocean energy conversion device in the past two decades. However, the industrialization process is still slow. One of the important reasons is lack of comprehensive turbine hydrodynamics analysis which can not only predict turbine power but also assess impacts on the surrounding areas. Although a lot can be learned from the marine propeller or the wind turbine studies, a systematic hydrodynamics analysis on a vertical axis tidal current turbine has not been reported yet. In this paper, we employed vortex method to calculate the performance of stand-alone vertical axis tidal turbine in term of power efficiency, torque and forces. This method focuses on power prediction, hydrodynamics analysis and design, which can provide information for turbines distribution planning in a turbine farm and other related studies, which are presented in Li and Calisal (2007), a companion paper in the conference. In this method, discrete vortex method is the core for numerical calculation. Free vortex wake structure, nascent vortex and vortex decay mechanism are discussed in detail. Good agreements in turbine efficiency comparison are obtained with both the newly-designed tidal turbine test in a towing tank and early wind turbine test.


2018 ◽  
Vol 79 ◽  
pp. 113-122 ◽  
Author(s):  
Yanbo Ma ◽  
Wei Haur Lam ◽  
Yonggang Cui ◽  
Tianming Zhang ◽  
Jinxin Jiang ◽  
...  

Author(s):  
Chul-hee Jo ◽  
Kang-hee Lee ◽  
Yu-ho Rho ◽  
Do-youb Kim

Recently, large scale tidal devices have been deployed with a maximum rotor diameter of 20m. These devices impose significant loading on supporting structures. The supporting structure for tidal current power device is under dynamic loadings caused by environmental loadings. Not only the environmental loadings but also the rotating turbine creates dynamic loading as well. The rotating turbine is obviously and continuously deformed for various incoming flow velocities. In many cases, a pile fixed foundation is used to secure the structure. In this study, the commonly used pile fixed type is applied with three blade turbine. A numerical analysis of the hydro-forces from a rotating tidal current turbine to a tower was conducted to determine the deformation distribution along the pile tower. The FSI analysis technique is used in the study.


2018 ◽  
Vol 12 (1) ◽  
pp. 3399-3409 ◽  
Author(s):  
Dendy Satrio ◽  
◽  
I Ketut Aria Pria Utama ◽  
Mukhtasor M ◽  
◽  
...  

2015 ◽  
Vol 30 (1) ◽  
pp. 83-96 ◽  
Author(s):  
Wei Guo ◽  
Hai-gui Kang ◽  
Bing Chen ◽  
Yu Xie ◽  
Yin Wang

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