This paper presents a numerical study of the dynamic performance of a vertical axis tidal current turbine. First, we introduce the geometrically exact beam theory along with its numerical implementation the geometric exact beam theory (GEBT), which are used for structural modeling. We also briefly review the variational-asymptotic beam sectional analysis (VABS) theory and discrete vortex method with free-wake structure (DVM-UBC), which provide the one-dimensional (1D) constitutive model for the beam structures and the hydrodynamic forces, respectively. Then, we validate the current model with results obtained by ANSYS using three-dimensional (3D) solid elements and good agreements are observed. We investigate the dynamic performance of the tidal current turbine including modal behavior and transient dynamic performance under hydrodynamic loads. Finally, based on the results in the global dynamic analysis, we study the local stress distributions at the joint between blade and arm by VABS. It is concluded that the proposed analysis method is accurate and efficient for tidal current turbine and has a potential for future applications to those made of composite materials.
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April 2018
Research-Article
Structural Dynamic Analysis of a Tidal Current Turbine Using Geometrically Exact Beam Theory
Qi Wang,
Qi Wang
Siemens Wind Power, Inc.,
1050 Walnut Street,
Boulder, CO 80302-5142
1050 Walnut Street,
Boulder, CO 80302-5142
Search for other works by this author on:
Pengkun Zhang,
Pengkun Zhang
School of Naval Architecture
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
Search for other works by this author on:
Ye Li
Ye Li
Professor
State Key Laboratory
of Ocean Engineering,
Collaborative Innovation Center for Advanced
Ship and Deep-Sea Exploration,
School of Naval Architecture
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
e-mail: ye.li@sjtu.edu.cn
State Key Laboratory
of Ocean Engineering,
Collaborative Innovation Center for Advanced
Ship and Deep-Sea Exploration,
School of Naval Architecture
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
e-mail: ye.li@sjtu.edu.cn
Search for other works by this author on:
Qi Wang
Siemens Wind Power, Inc.,
1050 Walnut Street,
Boulder, CO 80302-5142
1050 Walnut Street,
Boulder, CO 80302-5142
Pengkun Zhang
School of Naval Architecture
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
Ye Li
Professor
State Key Laboratory
of Ocean Engineering,
Collaborative Innovation Center for Advanced
Ship and Deep-Sea Exploration,
School of Naval Architecture
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
e-mail: ye.li@sjtu.edu.cn
State Key Laboratory
of Ocean Engineering,
Collaborative Innovation Center for Advanced
Ship and Deep-Sea Exploration,
School of Naval Architecture
and Civil Engineering,
Shanghai Jiaotong University,
Shanghai 200240, China
e-mail: ye.li@sjtu.edu.cn
Contributed by the Ocean, Offshore, and Arctic Engineering Division of ASME for publication in the JOURNAL OF OFFSHORE MECHANICS AND ARCTIC ENGINEERING. Manuscript received September 8, 2016; final manuscript received October 3, 2017; published online November 16, 2017. Assoc. Editor: Yin Lu Young.
J. Offshore Mech. Arct. Eng. Apr 2018, 140(2): 021903 (10 pages)
Published Online: November 16, 2017
Article history
Received:
September 8, 2016
Revised:
October 3, 2017
Citation
Wang, Q., Zhang, P., and Li, Y. (November 16, 2017). "Structural Dynamic Analysis of a Tidal Current Turbine Using Geometrically Exact Beam Theory." ASME. J. Offshore Mech. Arct. Eng. April 2018; 140(2): 021903. https://doi.org/10.1115/1.4038172
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