open access publication

Article, 2024

Effect of wave–current interaction on gap resonance between side-by-side barges

Applied Ocean Research, ISSN 0141-1187, Volume 150, 10.1016/j.apor.2024.104073

Contributors

Ding Y. 0000-0001-6976-6862 [1] Walther J.H. 0000-0001-8100-9178 [1] Shao Y. 0000-0002-9080-8438 (Corresponding author) [1]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

We investigate piston-mode fluid resonance within the narrow gap formed by two identical fixed barges in a side-by-side configuration, utilizing a two-dimensional fully nonlinear numerical wave tank. The focus is on examining the effects of uniform and shear currents. Under ‘wave+uniform-current’ conditions, a certain current speed is identified, beyond which the gap resonance reduces dramatically and monotonically with the current speed. This reduction is attributed to a stronger increase in damping compared to wave excitation, qualitatively explained by a linearized massless damping lid model. Furthermore, we study the effects of waves propagating on shear currents, maintaining an identical ambient current speed at the gap depth. Complementary to previous studies on this topic, our study reveals that the velocity profile of the studied shear current has an insignificant effect on the resonant gap amplitudes. The ambient current velocity at the gap depth is a more important key parameter to consider when assessing wave-induced gap responses, leading to a non-negligible increase in the resonant gap response. Consequently, disregarding the influence of currents in engineering practices is not a conservative approach.

Keywords

CFD, Piston-mode gap resonances, Side-by-side ships, Wave–current-structure interaction

Funders

  • China Scholarship Council
  • Department of Civil and Mechanical Engineering at Technical University of Denmark

Data Provider: Elsevier