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Ship Flow of the Ryuko-maru Calculated by the Reynolds Stress Model Using the Roughness Function at the Full Scale
by
Satoshi Matsuda
, Tokihiro Katsui
in
Accuracy
/ Alternative energy sources
/ Boundary conditions
/ CFD
/ Computation
/ Computational fluid dynamics
/ Computer applications
/ Energy resources
/ Flow distribution
/ Flow velocity
/ Fluid dynamics
/ Fluid flow
/ full scale
/ GC1-1581
/ Hydrodynamics
/ model scale
/ Naval architecture. Shipbuilding. Marine engineering
/ Oceanography
/ Reynolds averaged Navier-Stokes method
/ Reynolds number
/ Reynolds stress
/ Reynolds stress model
/ Sea surface
/ ship flow
/ Simulation
/ Stress distribution
/ Surface roughness
/ Turbulence
/ turbulence model
/ Turbulence models
/ Turbulent flow
/ VM1-989
2024
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Ship Flow of the Ryuko-maru Calculated by the Reynolds Stress Model Using the Roughness Function at the Full Scale
by
Satoshi Matsuda
, Tokihiro Katsui
in
Accuracy
/ Alternative energy sources
/ Boundary conditions
/ CFD
/ Computation
/ Computational fluid dynamics
/ Computer applications
/ Energy resources
/ Flow distribution
/ Flow velocity
/ Fluid dynamics
/ Fluid flow
/ full scale
/ GC1-1581
/ Hydrodynamics
/ model scale
/ Naval architecture. Shipbuilding. Marine engineering
/ Oceanography
/ Reynolds averaged Navier-Stokes method
/ Reynolds number
/ Reynolds stress
/ Reynolds stress model
/ Sea surface
/ ship flow
/ Simulation
/ Stress distribution
/ Surface roughness
/ Turbulence
/ turbulence model
/ Turbulence models
/ Turbulent flow
/ VM1-989
2024
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Do you wish to request the book?
Ship Flow of the Ryuko-maru Calculated by the Reynolds Stress Model Using the Roughness Function at the Full Scale
by
Satoshi Matsuda
, Tokihiro Katsui
in
Accuracy
/ Alternative energy sources
/ Boundary conditions
/ CFD
/ Computation
/ Computational fluid dynamics
/ Computer applications
/ Energy resources
/ Flow distribution
/ Flow velocity
/ Fluid dynamics
/ Fluid flow
/ full scale
/ GC1-1581
/ Hydrodynamics
/ model scale
/ Naval architecture. Shipbuilding. Marine engineering
/ Oceanography
/ Reynolds averaged Navier-Stokes method
/ Reynolds number
/ Reynolds stress
/ Reynolds stress model
/ Sea surface
/ ship flow
/ Simulation
/ Stress distribution
/ Surface roughness
/ Turbulence
/ turbulence model
/ Turbulence models
/ Turbulent flow
/ VM1-989
2024
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Ship Flow of the Ryuko-maru Calculated by the Reynolds Stress Model Using the Roughness Function at the Full Scale
Journal Article
Ship Flow of the Ryuko-maru Calculated by the Reynolds Stress Model Using the Roughness Function at the Full Scale
2024
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Overview
The k-omega SST turbulence model is extensively employed in Reynolds-averaged Navier–Stokes (RANS)-based Computational Fluid Dynamics (CFD) calculations. However, the accuracy of the estimation of viscous resistance and companion flow distribution for full-sized vessels is not sufficient. This study conducted a computational analysis of the flow around the Ryuko-maru at model-scale and full-scale Reynolds numbers utilizing the Reynolds stress turbulence model (RSM). The obtained Reynolds stress distribution from the model-scale computation was compared against experimental measurements to assess the capability of the RSM. Furthermore, full-scale computations were performed, incorporating the influence of hull surface roughness, with the resulting wake distributions juxtaposed with the actual ship measurements. The full-scale calculation employed the sand-grain roughness function, and an optimal roughness length scale was determined by aligning the computed wake distribution with Ryuko-maru’s measured data. The results of this study will allow for the direct performance estimation of full-scale ships and contribute to the design technology of performance.
Publisher
MDPI AG
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