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Numerical investigations of gap resonance excited by focused transient wave groups

  • Junliang Gao
  • , Hongzhou Chen
  • , Jun Zang
  • , Lifen Chen
  • , Gang Wang
  • , Yazhou Zhu
  • Northeast Electric Power University
  • The University of Western Australia
  • Jiangsu University of Science and Technology
  • University of Bath
  • Hohai University

Research output: Contribution to journalArticlepeer-review

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Abstract

Two or more structures arranged side by side with narrow gaps may be suffered from large-amplitude free-surface oscillations, which could cause green water on the deck and lead to dramatic increase of hydrodynamic loading acting on structures. Here, transient resonant motions of the free surface inside a narrow gap between two fixed boxes triggered by focused transient wave groups with various focused wave amplitudes are simulated using a two-dimensional numerical wave tank. The free-surface amplifications not only inside the gap but in the vicinity of the two-box system, the response time and the damping time of the transient gap resonance, the maximum wave loads on both boxes and the relative importance of the higher-order wave loads to the first-order ones are systematically investigated. It is found that the most vulnerable position to green water closely depends on the incident focused wave amplitude. The damping time decreases gradually with increasing focused wave amplitude, while the response time seems insensitive to the latter. As the focused wave amplitude increases, the normalized maximum wave loads on both boxes are also shown to decline gradually overall, while the relative importance of the higher-order wave loads to the first-order ones becomes more and more remarkable.

Original languageEnglish
Article number107628
JournalOcean Engineering
Volume212
Early online date7 Jul 2020
DOIs
Publication statusPublished - 15 Sept 2020

Bibliographical note

Publisher Copyright:
© 2020 Elsevier Ltd

Funding

This research is financially supported by the National Key Research and Development Program ( 2017YFC1404200 ), the National Natural Science Foundation of China (Grant Nos. 51911530205 , 51609108 , 51809039 and 51709136 ) and the Science Foundation from the Education Department of Jilin Province of China (Grant No. JJKH20180452KJ ). The authors also thank UK EPSRC (Grant No. EP/R007519/1 ), the Royal Academy of Engineering (Grant No. UK-CIAPP/73 ) and the Royal Society (Grant No. IEC\NSFC\181321 ) for providing partial support for this work.

FundersFunder number
Education Department of Jilin Province
National Basic Research Program of China (973 Program)2017YFC1404200
Engineering and Physical Sciences Research CouncilEP/R007519/1
Royal Academy Of EngineeringUK-CIAPP/73
National Natural Science Foundation of China51609108, 51911530205, 51709136, 51809039
Royal Society

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 6 - Clean Water and Sanitation
    SDG 6 Clean Water and Sanitation

Keywords

  • Focused transient wave group
  • Gap resonance
  • OpenFOAM®
  • Response time and damping time
  • Wave forces
  • Wave height amplification

ASJC Scopus subject areas

  • Environmental Engineering
  • Ocean Engineering

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