2010
DOI: 10.1016/j.apor.2009.10.001
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A two-dimensional numerical and experimental study of resonant coupled ship and piston-mode motion

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Cited by 79 publications
(29 citation statements)
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“…Faltinsen & Timokha [12] have discussed how to combine the linear boundary layer theory with potential-flow theory for the linearized steady-state sloshing problems. The idea was later applied to the moonpool problem by Kristiansen [24]. The effect of the boundary layer is an out/in flow to the potential flow domain.…”
Section: Sloshing In a 3d Rectangular Tankmentioning
confidence: 99%
“…Faltinsen & Timokha [12] have discussed how to combine the linear boundary layer theory with potential-flow theory for the linearized steady-state sloshing problems. The idea was later applied to the moonpool problem by Kristiansen [24]. The effect of the boundary layer is an out/in flow to the potential flow domain.…”
Section: Sloshing In a 3d Rectangular Tankmentioning
confidence: 99%
“…Here, results from simulations with a 2D fully nonlinear wave tank based on the Boundary Element Method (BEM) (cf. Kristiansen (2009)) are presented. The first three harmonics of the wave are presented as function of the spatial coordinate along the tank.…”
Section: Parasitic Wavesmentioning
confidence: 99%
“…The experiments were performed in a wave flume at the Marine Technology Centre at NTNU in Trondheim, Norway, in the same location as the experiments in [1,6,7]. The wave flume is 12 m long, 0.6 m wide and has a 1.0 m water depth.…”
Section: Methodsmentioning
confidence: 99%
“…For the semi-nonlinear hybrid method subtracting the proper infinite frequency-added mass multiplied by the acceleration on each side of the matrix system, and then integrating the equations forward in time, as done by Kristiansen [16], was found to be adequate for stability and accuracy. It is also beneficial that we in the semi-nonlinear method solve for the acceleration potential ψ in the potential flow domain.…”
Section: (C) Equations Of Motionmentioning
confidence: 99%
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