Wave Climate Hindcast for the Design of Offshore Wind Energy Structures in the German Bight

被引:0
|
作者
Mittendorf, K. [1 ]
Sweetmana, B. [1 ]
Zielke, W. [2 ]
机构
[1] Texas A&M, Maritime Syst Engn Dept, 200 Seawolf Pkwy, Galveston, TX 77553 USA
[2] Leibniz Univ Hannover, Inst Fluid Mech & Comp Applicat Civil Engn, D-30167 Hannover, Germany
基金
美国国家科学基金会;
关键词
Wave Height Hindcast; Extreme Wave Height; Design Condition; Wave Loads; Offshore Wind Turbines;
D O I
暂无
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Design of offshore wind turbines against ultimate limit state requires estimation of the most severe wave loading expected during the life of the wind turbine. Measured wind and wave data spanning sufficient duration to statistically predict these maximum loads are generally not available for most areas considered for wind farm development. One method used to develop the necessary design criteria is numerical simulation of environmental conditions at an offshore development site. Here, the effectiveness of the simulation methodology is assessed by critical comparison between design values based on simulated environmental conditions and equivalent design values based on measured buoy data. Specifically, the wind-wave activity in the German Bight is simulated for a twelve-year period using WaveWatch-III and SWAN. The simulation results are used to predict the significant wave height, the fifty-year mean-maximum wave height, and the fifty-year mean-maximum wave loading on a turbine support structure. Extreme values of significant wave heights are generally observed to be overpredicted compared with the hindcast methodology. In the load and response calculation the influence of the associated wave period is found to have a greater effect than this relatively small overprediciton of wave heights.
引用
收藏
页码:112 / 130
页数:19
相关论文
共 50 条
  • [21] Historical change and variability of spectral wind wave climate in the New York Bight
    Venolia, Maria
    Marsooli, Reza
    Portilla-Yandun, Jesus
    INTERNATIONAL JOURNAL OF CLIMATOLOGY, 2024, 44 (05) : 1739 - 1757
  • [22] POTENTIAL IMPACT OF 20 YEAR HINDCAST WIND AND WAVE CLIMATOLOGY ON SHIP DESIGN
    BALES, SL
    CUMMINS, WE
    COMSTOCK, EN
    MARINE TECHNOLOGY AND SNAME NEWS, 1982, 19 (02): : 111 - 139
  • [23] Influence of large offshore wind farms on North German climate
    Boettcher, Marita
    Hoffmann, Peter
    Lenhart, Hermann-J.
    Schluenzen, K. Heinke
    Schoetter, Robert
    METEOROLOGISCHE ZEITSCHRIFT, 2015, 24 (05) : 465 - 480
  • [24] Offshore wind resource assessment with WAsP and MM5: Comparative study for the German Bight
    Jimenez, Barbara
    Durante, Francesco
    Lange, Bernhard
    Kreutzer, Torsten
    Tambke, Jens
    WIND ENERGY, 2007, 10 (02) : 121 - 134
  • [25] Conceptual design and optimisation of a novel hybrid device for capturing offshore wind and wave energy
    E. Faraggiana
    M. Sirigu
    A. Ghigo
    E. Petracca
    G. Mattiazzo
    G. Bracco
    Journal of Ocean Engineering and Marine Energy, 2024, 10 : 35 - 56
  • [26] Conceptual design and optimisation of a novel hybrid device for capturing offshore wind and wave energy
    Faraggiana, E.
    Sirigu, M.
    Ghigo, A.
    Petracca, E.
    Mattiazzo, G.
    Bracco, G.
    JOURNAL OF OCEAN ENGINEERING AND MARINE ENERGY, 2024, 10 (01) : 35 - 56
  • [27] OVERVIEW AND PROSPECTS FOR DEVELOPMENT OF WAVE AND OFFSHORE WIND ENERGY
    Soares, C. Guedes
    Bhattacharjee, Joydip
    Karmakar, Debabrata
    BRODOGRADNJA, 2014, 65 (02): : 87 - 109
  • [28] Review of Hybrid Offshore Wind and Wave Energy Systems
    McTiernan, Kaylie L.
    Sharman, Krish Thiagarajan
    NAWEA WINDTECH 2019, 2020, 1452
  • [29] DISCUSSION ON HYBRID UTILIZATION FOR OFFSHORE WIND AND WAVE ENERGY
    Fujioka, Katsunari
    Nihei, Yasunori
    Le Boulluec, Marc
    PROCEEDINGS OF THE ASME 34TH INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, 2015, VOL 6, 2015,
  • [30] OFFSHORE WIND SYSTEMS - NEW WAVE ENERGY DEVICE
    不详
    OCEANUS, 1979, 22 (04) : 46 - 47