4.4 Article

Harmonic Analyses of Hydrodynamic Characteristics for Gap Resonance Between Fixed Box and Vertical Wall

期刊

CHINA OCEAN ENGINEERING
卷 35, 期 5, 页码 712-723

出版社

CHINA OCEAN PRESS
DOI: 10.1007/s13344-021-0063-7

关键词

gap resonance; harmonic analyses; resonant wave height; wave loads; OpenFOAM (R)

资金

  1. National Key Research and Development Program of China [2017YFC1404200]
  2. National Natural Science Foundation of China [51911530205, 51809039]
  3. Natural Science Foundation of Jiangsu Province [BK20201455, BK20210885]
  4. Natural Science Foundation of the Jiangsu Higher Education Institutions [20KJD170005]
  5. Qing Lan Project of Jiangsu Universities
  6. UK EPSRC [EP/T026782/1]
  7. Royal Academy of Engineering [UK-CIAPP/73]
  8. Royal Society [IEC\NSFC\181321]

向作者/读者索取更多资源

This study used CFD software OpenFOAM(R) to simulate the two-dimensional fluid resonance phenomenon in a narrow gap between two marine structures and investigated the influence of incident wave height and topographic slope on the nonlinear characteristics of hydrodynamic parameters. The research found that the relative importance of high-order components increases gradually with the incident wave height, and the topographic influence depends on the type of parameters and the incident wave height.
Two marine structures arranged side by side with a narrow gap may suffer from violent free-surface resonance, which would cause green water on deck, dramatically raise hydrodynamic loads on structures and seriously threaten the operation safety. The CFD-based open-sourced software, OpenFOAM (R), is employed to simulate the two-dimensional fluid resonance inside a narrow gap between a fixed box and a vertical wall induced by regular waves with different wave heights. The topographies with various plane slopes are placed in front of the wall. The focus of this article is on the influences of the incident wave height and the topographic slope on the nonlinear characteristics of various hydrodynamic parameters (including the wave height in the gap, the vertical wave force, and the horizontal wave force on the box) during gap resonance. The ratios of their high-order to the corresponding 1st-order components under different sets of the incident wave height and the topographic slope are analyzed. It is found that the relative importance of all the high-order components increases gradually with the incident wave height for all the three parameters. The topographic influence on them closely depends on the type of the parameters and the incident wave height. In addition, the occurrence of the 2nd-order gap resonance phenomenon can cause the 2nd-order wave height and horizontal force to be significantly larger than the corresponding 1st-order components.

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