Structural Design of the Substructure of a 10 MW Floating Offshore Wind Turbine System Using Dominant Load Parameters

被引:2
|
作者
Park, Sungjun [1 ]
Choung, Joonmo [1 ]
机构
[1] INHA Univ, Dept Naval Architecture & Ocean Engn, Incheon 22212, South Korea
关键词
floating offshore wind turbine; dominant load parameter; direct strength analysis; ultimate limit state; long-term load;
D O I
10.3390/jmse11051048
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Fully coupled integrated load analyses (ILAs) to evaluate not only the load response but also the structural integrity are required to design a floating offshore wind turbine, since there has been no firmly established approach for obtaining the structural responses of a FOWT substructure in the time domain. This study aimed to explore if a direct strength analysis (DSA) technique that has been widely used for ships and offshore structures can adequately evaluate the FOWT substructure. In this study, acceleration and nacelle thrust were used for the dominant load parameters for DSA. The turbine thrust corresponding to the 50-year return period was taken from the literature. The acceleration response amplitude operator (RAO) was obtained through frequency response hydrodynamic analysis. The short-term sea states defined by the wave scatter diagram (WSD) of the expected installation area was represented by the JONSWAP wave spectrum. To account for the multi-directionality of the short-crested waves, the 0th order moments of the wave spectrum were corrected. The probabilities of each short-term sea state and each wave incidence angle were applied to derive the long-term acceleration for each return period. DSA cases were generated by combining the long-term acceleration and nacelle thrust to maximize the forces in the surge, sway, and heave directions. Linear spring elements were placed under the three outer columns of the substructure to provide soft constraints for hive, roll, and pitch motions. Nonlinear spring elements with initial tension were placed on the three fairlead chain stoppers (FCSs) to simulate the station-keeping ability of the mooring lines; they provided initial tension in the slacked position and an increased tension in the taut position. The structural strength evaluation of the coarse mesh finite element model with an element size same as the stiffener spacing showed that high stresses exceeding the permissible stresses occurred in the unstable members of the substructure. The high stress areas were re-evaluated using a fine mesh finite element model with an element size of 50 mm x 50 mm. The scope of structural reinforcement was identified from the fine mesh analyses. It was found that the DSA can be properly utilized for the substructure strength assessment of a FOWT.
引用
下载
收藏
页数:18
相关论文
共 50 条
  • [31] Structural Modeling and Failure Assessment of Spar-Type Substructure for 5 MW Floating Offshore Wind Turbine under Extreme Conditions in the East Sea
    Ha, Kwangtae
    Kim, Jun-Bae
    Yu, Youngjae
    Seo, Hyoung-Seock
    ENERGIES, 2021, 14 (20)
  • [32] Structural Health Monitoring challenges on the 10-MW offshore wind turbine model
    Di Lorenzo, E.
    Kosova, G.
    Musella, U.
    Manzato, S.
    Peeters, B.
    Marulo, F.
    Desmet, W.
    11TH INTERNATIONAL CONFERENCE ON DAMAGE ASSESSMENT OF STRUCTURES (DAMAS 2015), 2015, 628
  • [33] Design and analysis of 12 MW offshore wind turbine
    Xing, Junqiang
    Yu, Wendi
    Song, Yundong
    Zhang, Yunshuo
    Dai, Zhuwen
    ENERGY REPORTS, 2022, 8 : 375 - 383
  • [34] Structural design and analysis of a 10MW wind turbine blade
    Cox, Kevin
    Echtermeyer, Andreas
    SELECTED PAPERS FROM DEEP SEA OFFSHORE WIND R&D CONFERENCE, 2012, 24 : 194 - 201
  • [35] MOORING SYSTEM DESIGN FOR FLOATING OFFSHORE WIND TURBINE WORKING IN INTERMEDIATE WATER
    He, Zhen
    Chuang, Zhenju
    Li, Chunzheng
    Zhang, Aobo
    PROCEEDINGS OF ASME 2022 41ST INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE & ARCTIC ENGINEERING, OMAE2022, VOL 8, 2022,
  • [36] Parametrisation Scheme for Multidisciplinary Design Analysis and Optimisation of a Floating Offshore Wind Turbine Substructure-OC3 5MW Case Study
    Ojo, Adebayo
    Collu, Maurizio
    Coraddu, Andrea
    SCIENCE OF MAKING TORQUE FROM WIND, TORQUE 2022, 2022, 2265
  • [37] Integrated Dynamics Response Analysis for IEA 10-MW Spar Floating Offshore Wind Turbine
    Guo, Xiaojiang
    Zhang, Yu
    Yan, Jiatao
    Zhou, Yiming
    Yan, Shu
    Shi, Wei
    Li, Xin
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2022, 10 (04)
  • [38] DEVELOPMENT OF A 10-MW SEMISUBMERSIBLE TYPE FLOATING OFFSHORE WIND TURBINE FOR THE EAST SEA, KOREA
    Ahn, Hyeonjeong
    Shin, Hyunkyoung
    PROCEEDINGS OF THE ASME 39TH INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, OMAE2020, VOL 9, 2020,
  • [39] Structural Safety and Design Requirements of CFMP based Offshore Wind Substructure System
    Jeong, Youn-Ju
    You, Young-Jun
    Park, Min-Su
    Lee, Du-Ho
    Kim, Byeong-Cheol
    2013 OCEANS - SAN DIEGO, 2013,
  • [40] Simultaneous design optimisation methodology for floating offshore wind turbine substructure and feedback-based control strategy
    López-Queija J.
    Tena A.
    Jugo J.
    Aristondo A.
    Robles E.
    Applied Ocean Research, 2024, 150