Fragility estimation for performance-based structural design of floating offshore wind turbine components

被引:0
作者
Choe, Do-Eun [1 ]
Ramezani, Mahyar [1 ]
机构
[1] New Mexico State Univ, Dept Civil Engn, 3035 South Espina St, Las Cruces, NM 88003 USA
基金
美国国家科学基金会;
关键词
Renewable energy; Reliability; Floating offshore wind turbine; Uncertainty model; Probabilistic modeling; PROBABILISTIC CAPACITY MODELS; RELIABILITY-BASED DESIGN; UNCERTAINTY; FAILURE;
D O I
10.1016/j.ress.2024.110587
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This study proposes a computational and mathematical framework aimed at assessing the reliability of structural components within Floating Offshore Wind Turbines (FOWT) that reflects the various sources of uncertainties coupled between structural analyses, hydrodynamics, and aerodynamics. The limit state functions are represented through structural capacity and environmental demand models for selected structural failure modes that incorporate fully coupled aero-hydro-servo-elastic analysis. The fragility surfaces are developed for a selected benchmark wind turbine for both operating and parking conditions. The fragilities are also estimated under 50year and 100-year environmental conditions in the selected U.S. coastal regions. It is found that the wind speed variations largely affect the fragility during non-operation, while wave height variations are significant during operation. Increased uncertainties in environmental parameters raised failure probabilities, especially in lower fragility ranges targeted by design codes. Analyses in U.S. coastal environments show both parking and operating conditions can be critical, challenging the previous focus on parking. Sensitivity studies reveal that under mild conditions, structural reliability is influenced by moment of inertia and material strength, but as environmental loads increase, these parameters become equally significant. Increased uncertainties in parameters lead to higher failure risks, especially below 25 m/s wind speeds.
引用
收藏
页数:18
相关论文
共 76 条
  • [1] ABS A, 2013, Guide for building and classing floating offshore wind turbine installations
  • [2] American Petroleum Institute, 2020, Planning, Designing, and Constructing Fixed Offshore Platforms: Working Stress Design
  • [3] [Anonymous], 2021, DNVGL-ST-0119.
  • [4] [Anonymous], 2005, Steel Construction Manual, V13th
  • [5] API A, 2007, API Bull 2INT-MET
  • [6] Fragility analysis of a 5-MW NREL wind turbine considering aero-elastic and seismic interaction using finite element method
    Asareh, Mohammad-Amin
    Schonberg, William
    Volz, Jeffery
    [J]. FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2016, 120 : 57 - 67
  • [7] Estimation of small failure probabilities in high dimensions by subset simulation
    Au, SK
    Beck, JL
    [J]. PROBABILISTIC ENGINEERING MECHANICS, 2001, 16 (04) : 263 - 277
  • [8] Mooring system fatigue analysis of a floating offshore wind turbine
    Barrera, Carlos
    Battistella, Tommaso
    Guanche, Raul
    Losada, Inigo J.
    [J]. OCEAN ENGINEERING, 2020, 195
  • [9] Bourinet J.M., 2010, FERUM 41 USERS GUIDE
  • [10] Failure rate, repair time and unscheduled O&M cost analysis of offshore wind turbines
    Carroll, James
    McDonald, Alasdair
    McMillan, David
    [J]. WIND ENERGY, 2016, 19 (06) : 1107 - 1119