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Experimental Design and Analysis of the Evolution of Unidirectional Wind Wave Interaction

  • Zitan Zhang
  • , Tianning Tang
  • , Wentao Xu
  • , Xiaobo Zheng
  • , Lijun Zhang
  • , Jung-hoon Lee
  • , Jason P. Monty
  • , Ye Li
  • Shanghai Jiao Tong University
  • University of Oxford
  • Lanzhou University of Technology
  • University of Melbourne

Research output: Contribution to journalJournal articleResearchpeer-review

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Abstract

The greatest threat to floating structures at sea is the huge waves formed with extreme meteorological conditions. However, the lack of a systematic large-scale facility for sea-air interaction limits the further development of wind-wave interaction. Therefore, we have designed and developed an extreme wave experimental facility with wind forcing. We performed unidirectional random wave experiments to investigate the wind impact on waves. The results suggest that the effect of wind on wave height distribution is significant. The wave height distribution cannot be well described by the Rayleigh distribution, especially in cases with a large Benjamin-Feir index (BFI). It is worth noting that the case with the largest BFI in the experiment did not increase with the wind forcing as expected. We attempt to provide a possible explanation for this issue by understanding the differences between the facility specification. We consider that the dimensionless length of the tank and the quality of turbulent wind can have a significant impact on wave evolution, especially the probability of extreme events.
Original languageEnglish
JournalIEEE Journal of Oceanic Engineering
Volume50
Issue number3
Pages (from-to)2016 - 2029
Number of pages14
ISSN0364-9059
DOIs
Publication statusPublished - 2025

Keywords

  • Benjamin-Feir instability (BFI)
  • Exceedance probability
  • Extreme wave
  • Spectrum analysis
  • Wave tank
  • Wind forcing

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