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Coupled Aerodynamic and Hydrodynamic Analysis of Floating Offshore Wind Turbine Using CFD Method 被引量:1

Coupled Aerodynamic and Hydrodynamic Analysis of Floating Offshore Wind Turbine Using CFD Method
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摘要 To simulate floating offshore wind turbine(FOWT)in coupled wind-wave domain via CFD method,the NREL 5MW wind turbine supported by the OC3-Hywind Spar platform is modeled in the STAR-CCM+ software.Based on the Reynolds-averaged Navier-Stokes(RANS)equations and re-normalisation group(RNG)k-εturbulence model,the rotor aerodynamic simulation for wind turbine is conducted.Numerical results agree well with the NREL data.Taking advantage with the volume of fluid(VOF)method and dynamic fluid body interaction(DFBI)technology,the dynamic responses of the floating system with mooring lines are simulated under the coupled wind-wave sea condition.The free-decay tests for rigid-body degrees of freedom(DOFs)in still water and hydrodynamic tests in a regular wave are performed to validate the numerical model by comparing its result with the results simulated by FAST.Finally,the simulations of the overall FOWT system in the coupled wind-wave flow field are carried out.The relationship between the power output and dynamic motion responses of the platform is investigated.The numerical results show that the dynamic response of wind turbine performance and platform motions all vary in the same frequency as the inlet wave.During platform motion,the power output of wind turbine is more sensitive than the thrust force.This study may provide some reference for further research in the coupled aero-hydro simulation of FOWT. To simulate floating offshore wind turbine (FOWT) in coupled wind-wave domain via CFD method, the NREL 5 MW wind turbine supported by the OC3-Hywind Spar platform is rrlodeled in the STAR-CCM+soft-ware. Based on the Reynolds-averaged Navier-Stokes (RANS) equations and re-normalisation group (RNG) k-ε turbulence model, the rotor aerodynamic simulation for wind turbine is conducted. Numerical results agree well with the NREL data. Taking advantage with the volume of fluid (VOF) method and dynamic fluid body interaction (DFBI) technology, the dynamic responses of the floating system with mooring lines are simulated under the cou- pled wind-wave sea condition. The free-decay tests for rigid-body degrees of freedom (DOFs) in still water and hy- drodynamic tests in a regular wave are performed to validate the numerical model by comparing its result with the results simulated by FAST. Finally, the simulations of the overall FOWT system in the coupled wind-wave flow field are carried out. The relationship between the power output and dynamic motion responses of the platform is investigated. The numerical results show that the dynamic response of wind turbine performance and platform motions all vary in the same frequency as the inlet wave. During platform motion, the power output of wind turbine is more sensitive than the thrust force. This study may provide some reference for further research in the coupled aero-hydro simulation of FOWT.
出处 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI CSCD 2016年第1期80-87,共8页 南京航空航天大学学报(英文版)
基金 supported by the National Basic Research Program of China(″973″Program)(No.2014CB046200) the Specialized Research Fund for the Doctoral Program of Higher Education(No.20120073120014)
关键词 floating offshore wind turbine(FOWT) computational fluid dynamics(CFD) aerodynamic perform ance dynamic fluid body interaction floating offshore wind turbine (FOWT) computational fluid dynamics (CFD) aerodynamic performance dynamic fluid body interaction
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参考文献13

  • 1JONKMAN J M. Dynamics of offshore floating wind turbines-model development and verification [ J ]. Wind Energy, 2009, 12(5): 459-492.
  • 2JONKMAN J M, MATHA D. Dynamics of offshore floating wind turbines-analysis of three concepts[J]. Wind Energy, 2011, 14(4): 557-569.
  • 3JONKMAN J M, SCLAVOUNOS P D. Development of fully coupled aeroelastie and hydrodynamic models for offshore wind turbines[C]// ASME Wind Energy Sym-posium Reno. Nevada, USA: [s. n. ], 2006.
  • 4REN N, LI Y, OU J. Coupled wind-wave time domain analysis of floating offshore wind turbine based on com- putational fluid dynamics method[J]. Journal of Renew- able and Sustainable Energy, 2014, 6(2) : 23106.
  • 5QUALLEN S, XING T, CARRICA P, et al. CFD sim- ulation of a floating offshore wind turbine system using a quasi-static crowfoot mooring-line model [ C]. Interna- tional Society of Offshore and Polar Engineers, 2013.
  • 6MATHA D, SCHLIPF M, CORDLE A, et al. Challenges in simulation of aerodynamics, hydrody- namics, and mooring-line dynamics of floating off- shore wind turbines[M]. National Renewable Energy Laboratory, US Department of Energy, Office of Energy Efficiency and Renewable Energy, 2011.
  • 7KARIMIRADM, MOAN T. Effect of aerodynamic and hydrodynamic damping on dynamic response of spar type floating wind turbine[C]// Proceedings of the European Wind Energy Conference EWEC2010. Warsaw: [s. n. ], 2010.
  • 8KVITTEM M I, BACHYNSKI E E, MOAN T. Effects of hydrodynamic modelling in fully coupled simulations of a semi-submersible wind turbine[J]. Energy Procedia, 2012, 24: 351-362.
  • 9JONKMAN J, MUSIAL W. Offshore code eomparimn collaboration (OC3) for IEA wind task 23 offshore wind technology and deployment[R]. National Renewable En- ergy Laboratory (NREL), Golden, Co. , 2010.
  • 10JONKMAN J, BUTTERFIELD S, MUSIAL W, et al. Definition of a 5-MW reference wind turbine for offshore system development[R]. National Renewable Energy La- boratory (NREL), Golden, Co. , 2009.

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