Detached eddy simulation of large scale wind turbine wake in offshore environment

被引:1
作者
De Girolamo, Filippo [1 ]
Castorrini, Alessio [1 ]
Barnabei, Valerio F. [1 ]
Morici, Vincenzo [1 ]
Tieghi, Lorenzo [1 ]
Bonfiglioli, Aldo [2 ]
Corsini, Alessandro [1 ]
机构
[1] Sapienza Univ Rome, Dept Mech & Aerosp Engn, Via Eudossiana 18, I-00184 Rome, Italy
[2] Univ Basilicata, Sch Engn, Viale Ateneo Lucano 10, I-85100 Potenza, Italy
关键词
Floating offshore wind farms; Aeroelasticity; Horizontal-axis wind turbine; Mediterranean Sea; TURBULENCE; SURFACE; MODELS; VELOCITY; LAYER; AERODYNAMICS; PERFORMANCE; GENERATION; PREDICTION; ROUGHNESS;
D O I
10.1016/j.ijheatfluidflow.2024.109637
中图分类号
O414.1 [热力学];
学科分类号
摘要
The rapid growth of the global offshore wind market underscores the need for accurate numerical simulations to support the development and design of offshore wind farms, especially in regions like the Mediterranean where measured data on marine-weather conditions for use in offshore wind farm design are rare. This paper addresses the challenge of proposing a reliable simulation framework to assess the impact of resolving sea waves on wind turbine wake simulations. A case study is defined using reanalysis data to derive possible met-ocean conditions fora 15 MW offshore wind turbine in operation at a Mediterranean site. The simulation framework employs a one-way coupling between waves and aerodynamics, an aeroelastic actuator line model to compute the wind turbine rotor dynamics and its integration into a hybrid LES-URANS turbulent flow simulation of the surrounding wind field based on the k - ! SST Improved Delayed Detached Eddy Simulation. Atmospheric turbulence is accounted for by using a stochastic wind inflow generator based on the Kaimal velocity spectrum. Wave motion is resolved using a dynamic mesh solver. Results are provided and discussed in terms of the investigation of the effects of resolving the wave motion interaction on wind shear, rotor wake, turbine loads, and performance.
引用
收藏
页数:13
相关论文
共 73 条
[1]  
Bachant Pete, 2019, Zenodo, DOI 10.5281/ZENODO.3542301
[2]  
Bachant P, 2018, Arxiv, DOI arXiv:1605.01449
[3]  
Barter Garrett, 2023, Zenodo, DOI 10.5281/ZENODO.8070464
[4]  
Berge E., 2009, EWEC 2009, P1
[5]   Charnock dynamics: a model for the velocity structure in the wave boundary layer of the air-sea interface [J].
Bye, John A. T. ;
Wolff, Joerg-Olaf .
OCEAN DYNAMICS, 2008, 58 (01) :31-42
[6]   Investigations on offshore wind turbine inflow modelling using numerical weather prediction coupled with local-scale computational fluid dynamics [J].
Castorrini, Alessio ;
Gentile, Sabrina ;
Geraldi, Edoardo ;
Bonfiglioli, Aldo .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2023, 171
[7]  
Charnock H., 1955, Q J R METEOROL SOC, V81, P639, DOI DOI 10.1002/QJ.49708135027
[8]  
Chatelain P., 2011, Vortex Particle-Mesh Methods with Immersed Lifting Lines Applied to the Large Eddy Simulation of Wind Turbine Wakes
[9]   Helicoidal vortex model for wind turbine aeroelastic simulation [J].
Chattot, Jean-Jacques .
COMPUTERS & STRUCTURES, 2007, 85 (11-14) :1072-1079
[10]   A TIME INTEGRATION ALGORITHM FOR STRUCTURAL DYNAMICS WITH IMPROVED NUMERICAL DISSIPATION - THE GENERALIZED-ALPHA METHOD [J].
CHUNG, J ;
HULBERT, GM .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1993, 60 (02) :371-375