Open Access

Study of the Hydrodynamic Characteristics of Anti-Heave Devices of Wind Turbine Platforms at Different Water Depths


Cite

Counci, ‘https://gwec.net/global-wind-report-2021’, GLOBAL WIND REPORT. 2021.Search in Google Scholar

G. Nagababu, S.S. Kachhwaha, and V. Savsani, ‘Estimation of technical and economic potential of offshore wind along the coast of India’, Energy. 2017, doi:10.1016/j.energy.2017.07.032.Open DOISearch in Google Scholar

A. Goupee, B. Koo, R. Kimbal, K. Lambrakos, and H.J. Dagher, ‘Experimental Comparison of Three Floating Wind Turbine Concepts’, International Conference on Ocean, Offshore and Arctic Engineering. 2014.Search in Google Scholar

X. Wu, Y. Hu, Y. Li, J. Yang, L. Duan, T. Wang, and S. Liao, ‘Foundations of offshore wind turbines: a review’, Renew and Sustain. Energy Review. 2019, doi:10.1016/j.rser.2019.01.012.Open DOISearch in Google Scholar

Q. Cao, L. Xiao, Z. Chen, and M. Liu, ‘An experimental study on dynamic behavior of a new concept of 10MW semi-submersible wind turbine’, ISOPE International Ocean and Polar Engineering Conference. ISOPE. 2020.Search in Google Scholar

A. Nematbakhsh, D.J. Olinge, and G. Tryggvason, ‘A nonlinear computational model of floating wind turbines’, Journal of Fluids Engineering. 2013, doi:10.1115/1.4025074.Open DOISearch in Google Scholar

A. Nematbakhsh, D.J. Olinge, and G. Tryggvason, ‘A Nonlinear simulation of a spar buoy floating wind turbine under extreme ocean conditions’, Journal of Renewable and Sustainable Energy. 2014, doi:10.1063/1.4880217.Open DOISearch in Google Scholar

Z. Hu, L. Li, J. Wang, Q. Hu, and M.C. Shen, ‘Dynamic responses of a semi-type offshore floating wind turbine during normal state and emergency shutdown’, China Ocean Engineering. 2016, doi:10.1007/s13344-016-0005-y.Open DOISearch in Google Scholar

A.M. Abou-Raya, N.N. Khali, and M.S. Afify, ‘Dynamic behavior of TLP’s supporting 5-MW wind turbines under multi-directional waves’, Ocean Systems Engineering. 2016, doi:10.12989/ose.2016.6.2.203.Open DOISearch in Google Scholar

C. Barrera, I.J. Losad, R. Guanche, and L. Johanning, ‘The influence of wave parameter definition over floating wind platform mooring systems under severe sea states’, Ocean Engineering. 2019, doi:10.1016/j.oceaneng.2018.11.018.Open DOISearch in Google Scholar

Z. Zhao, W. Wang, W. Shi, and X. Li, ‘Effects of second-order hydrodynamics on an ultra-large semi-submersible floating offshore wind turbine’, Structures. 2020, doi:10.1016/j.istruc.2020.10.058.Open DOISearch in Google Scholar

Y.R. Alkarem and B.O. Ozbahceci, ‘A complemental analysis of wave irregularity effect on the hydrodynamic responses of offshore wind turbines with the semi-submersible platform’, Applied Ocean Research. 2021, doi:10.1016/j.apor.2021.102757.Open DOISearch in Google Scholar

Y.H. Bae, M.H. Kim, and Y.S. Shin, ‘Rotor-floater-mooring coupled dynamic analysis of mini TLP-type offshore floating wind turbines’, International Conference on Offshore Mechanics and Arctic Engineering, OMAE. 2010.Search in Google Scholar

I. Bayati, S. Gueydon, and M. Belloli, ‘Study of the effect of water depth on potential flow solution of the OC4 semi-submersible floating offshore wind turbine’, Energy Procedia. 2015, doi:10.1016/j.egypro.2015.11.419.Open DOISearch in Google Scholar

X. Chen, H. Yu, W. Wang, and B. Wang, ‘Analysis of Motion Response of Wind Turbine Platform Considering Different Heading Angles and Water Depth’, 2nd International Conference on Sustainable Energy, Environment and Information Engineering (SEEIE). Atlantis Press. 2019.Search in Google Scholar

C. Le, Y. Li, and H. Ding, ‘Study on the coupled dynamic responses of a submerged floating wind turbine under different mooring conditions’, Energies. 2019, doi:10.3390/en12030418.Open DOISearch in Google Scholar

L. Zhang, C. Michailides, Y. Wang, and W.Shi, ‘Moderate water depth effects on the response of a floating wind turbine’, Structures. 2020, doi:10.1016/j.istruc.2020.09.067.Open DOISearch in Google Scholar

Z. Lin, X. Liu, and S. Lotfian, ‘Impacts of water depth increase on offshore floating wind turbine dynamics’, Ocean Engineering. 2021, doi:10.1016/j.oceaneng.2021.108697.Open DOISearch in Google Scholar

W. Wei, Z. Chen, J. Panpan, L. Zhiqiang, and X. Yonghe, ‘Numerical simulation and experimental study on perforated heave plate of a DeepCwind floating wind turbine platform’, Ships and Offshore Structures. 2022, doi:10.1080/17445302.2022.2062157.Open DOISearch in Google Scholar

W. Wei, F. Sheming, Y. Yunxiang, Z. Cheng, X. Liqun, W. Guibiao and L. Zhiqiang. ‘Study on the Influence of Chamfer Perforation on Heave and Pitch of a Single Floating Platform’ Polish Maritime Research. 2023. doi:/10.2478/pomr-2023-0005Search in Google Scholar

A. Robertson, J. Jonkman, M. Masciola, H. Song, A. Goupee, A. Coulling, and C. Luan, ‘Definition of the semi-submersible floating system for phase II of OC4’, National Renewable Energy Lab (NREL). Golden, CO (United States). 2014, doi:10.2172/1155123.Open DOISearch in Google Scholar

J. Chen, Z. Liu, Y. Song, Y. Peng, and J. Li, ‘Experimental study on dynamic responses of a spar-type floating offshore wind turbine’, Renewable Energy. 2022, doi:10.1016/j.renene.2022.06.149.Open DOISearch in Google Scholar

L. Meng, Y. He, Y. Zhao, T. Peng, and J. Yang, ‘Experimental study on aerodynamic characteristics of the model wind rotor system and on characterization of a wind generation system’, China Ocean Engineering. 2019, doi:10.1007/s13344-019-0014-8.Open DOISearch in Google Scholar

A. Kafeel, S. Aziz, M. Awais, M.A. Khan, K. Afaq, S.A. Idris, and S.M. Mostafa, ‘An expert system for rotating machine fault detection using vibration signal analysis’, Sensors. 2021, doi:10.3390/s21227587.Open DOISearch in Google Scholar

C.W. Hirt and B.D. Nichols, ‘Volume of fluid (VOF) method for the dynamics of free boundaries’, Journal of Computational Physics. 1981, doi:10.1016/0021-9991(81)90145-5.Open DOISearch in Google Scholar

T.T. Tran and D.H. Kim, ‘A CFD study of coupled aerodynamic‐ hydrodynamic loads on a semi-submersible floating offshore wind turbine’, Wind Energy. 2017, doi:10.1002/we.2145.Open DOISearch in Google Scholar

Y. Zhang and B. Kim, ‘A fully coupled computational fluid dynamics method for analysis of semi-submersible floating offshore wind turbines under wind-wave excitation conditions based on OC5 data’, Applied sciences. 2018, doi:10.3390/app8112314.Open DOISearch in Google Scholar

T.T. Tran and D.H. Kim, ‘The coupled dynamic response computation for a semi-submersible platform of floating offshore wind turbine’, Journal of wind engineering and industrial aerodynamics. 2015, doi:10.1016/j.jweia.2015.09.016.Open DOISearch in Google Scholar

eISSN:
2083-7429
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences