Environmental design load for the line force of a point-absorber wave energy converter

被引:6
|
作者
Shahroozi, Zahra [1 ]
Goeteman, Malin [1 ,3 ]
Nilsson, Erik [2 ,3 ]
Engstroem, Jens [1 ]
机构
[1] Uppsala Univ, Angstromlaboratoriet, Dept Elect Engn, Lagerhyddsvagen 1, S-75237 Uppsala, Sweden
[2] Uppsala Univ, Dept Earth Sci, Villavagen 16, S-75236 Uppsala, Sweden
[3] Ctr Nat Hazards & Disaster Sci CNDS, Villavagen 16, S-75236 Uppsala, Sweden
基金
瑞典研究理事会;
关键词
Design load; Wave tank experiment; WEC-Sim; Bayesian; Markov chain Monte-Carlo; Long-term extreme response; Short-term extreme response; Probabilistic failure; FRICTION; MODEL; UNCERTAINTIES; COMPENSATION;
D O I
10.1016/j.apor.2022.103305
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
To ensure a reliable operation over the life time of wave energy converters (WECs), a number of load cases need to be considered according to international standards for marine structures to determine an optimal design. This paper outlines the procedure of obtaining an environmental design load for the line force of a 1:30 scaled point-absorber WEC using an environmental contour with a 50-year return period for the Dowsing site in the North Sea. To obtain the response of the WEC during extreme conditions, a numerical WEC-Sim model is developed and calibrated with experimental wave tank tests to augment the data required for such design load analysis. The design load for the line force is estimated based on the full long-term extreme response computed from the full sea state approach by considering 180, 360, and 720 sea state samples as well as the contour approach for the sea state that gives the most extreme response. Further, a probabilistic approach is used to quantify the probability of failure for a critical mechanical component of the system such as shackle. The result shows that the numerical WEC-Sim model is able to sufficiently replicate the real response of the system during extreme irregular waves. The Bayesian theory with Monte-Carlo algorithm is found to be an excellent tool for identifying the degree of belief in the statistical models used for the short-term extreme response analysis. Considering the ultimate limit state, the design load for the 1:30 scaled system is calculated as 670.95 N (i.e. 18.11 MN for a full-scale system) after applying the partial load safety factor of 1.35 on the full long-term extreme response of the system for the 9.1 years return period (i.e. 50 years in a full-scale model).
引用
收藏
页数:24
相关论文
共 50 条
  • [41] Characterization of loads on a hemispherical point absorber wave energy converter
    Jakobsen, M. M.
    Beatty, Scott
    Iglesias, G.
    Kramer, M. M.
    INTERNATIONAL JOURNAL OF MARINE ENERGY, 2016, 13 : 1 - 15
  • [42] Life cycle assessment of a point absorber wave energy converter
    Engelfried, Tabea
    Cucurachi, Stefano
    Lavidas, George
    CLEANER ENVIRONMENTAL SYSTEMS, 2025, 16
  • [43] A numerical study of a taut-moored point-absorber wave energy converter with a linear power take-off system under extreme wave conditions
    Tagliafierro, Bonaventura
    Martinez-Estevez, Ivan
    Dominguez, Jose M.
    Crespo, Alejandro J. C.
    Goteman, Malin
    Engstrom, Jens
    Gomez-Gesteira, Moncho
    APPLIED ENERGY, 2022, 311
  • [44] Reliability-based hull geometry optimisation of a point-absorber wave energy converter with power take-off structural reliability objectives
    Garcia-Teruel, Anna
    Clark, Caitlyn E.
    IET RENEWABLE POWER GENERATION, 2021, 15 (14) : 3255 - 3268
  • [45] Investigations into Balancing Peak-to-Average Power Ratio and Mean Power Extraction for a Two-Body Point-Absorber Wave Energy Converter
    Karayaka, Hayrettin Bora
    Yu, Yi-Hsiang
    Muljadi, Eduard
    ENERGIES, 2021, 14 (12)
  • [46] Contrast experimental study on energy conversion of the point absorber Wave Energy Converter
    Lin, Liqun
    Chen, Zhixin
    Wu, Bijun
    ADVANCES IN ENERGY SCIENCE AND EQUIPMENT ENGINEERING, 2015, : 1719 - 1723
  • [47] Numerical modeling of extreme wave interaction with point-absorber using OpenFOAM
    Katsidoniotaki, Eirini
    Goteman, Malin
    OCEAN ENGINEERING, 2022, 245
  • [48] TRIZ based efficiency enhancement of point absorber wave energy converter
    Santhosh, N.
    Dineshbabu, C.
    Srinivasan, M.
    MATERIALS TODAY-PROCEEDINGS, 2022, 66 : 809 - 814
  • [49] Optimized Latching Control of Floating Point Absorber Wave Energy Converter
    Gadodia, Chaitanya
    Shandilya, Shubham
    Bansal, Hari Om
    3RD INTERNATIONAL CONFERENCE ON COMMUNICATION SYSTEMS (ICCS-2017), 2018, 331
  • [50] Power maximising control of a heaving point absorber wave energy converter
    Gu, Yifeng
    Ding, Boyin
    Sergiienko, Nataliia Y.
    Cazzolato, Benjamin S.
    IET RENEWABLE POWER GENERATION, 2021, 15 (14) : 3296 - 3308