open access publication

Article, 2024

Numerical simulations of flow inside a stone protection layer with a modified k-ω turbulence model

Coastal Engineering, ISSN 1872-7379, 0378-3839, Volume 189, Page 104469, 10.1016/j.coastaleng.2024.104469

Contributors

Zhai, Yanyan 0000-0001-6344-546X (Corresponding author) [1] Fuhrman, David Roger 0000-0002-2433-6778 [1] Christensen, Erik Damgaard 0000-0002-5225-5828 [1]

Affiliations

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

Abstract

A numerical model is developed to investigate the flow in porous media, for the purposes of simulating scour protection around coastal and offshore structures. In the present model, the Volume-Averaged Reynolds Averaged Navier-Stokes (VARANS) equations are solved, coupled with the volume-averaged k-ω turbulence closure. The volume-averaged k-ω equations are derived by taking the spatial average of the standard k-ω equations. The unknown coefficients caused by the averaging procedure are determined by large eddy simulation (LES). The developed model is validated against existing experimental results of flow in stone covers under both oscillatory and steady current conditions. A gradual transition of porosity towards unity at the interface between the porous media and the free flow is assumed in the simulation to fit the irregular interface in practical engineering. In the presence of parabolic porosity variation at the interface, the calculated velocity profile, bed shear stress, and turbulent fluctuations inside the porous medium are compared to measurements. The numerical results match well against the experimental data. Comparison with the volume-averaged k-ε turbulence model shows that the volume-averaged k-ω turbulence model provides more accurate flow behavior within the porous media.

Keywords

LES, Volume-Averaged Reynolds Averaged Navier-Stokes (VARANS) equations, accurate flow behavior, average, bed, bed shear stress, behavior, calculated velocity profiles, closure, comparison, conditions, data, eddy simulation, engineering, equations, experimental data, experimental results, flow, flow behavior, fluctuations, free flow, interface, irregular interface, k-e turbulence model, layer, measurements, medium, model, numerical model, numerical results, numerical simulation of flow, numerical simulations, offshore structures, porosity, porosity variation, porous media, practical engineering, presence, procedure, profile, protection, protective layer, purposes, results, scour protection, shear stress, simulation, simulation of flow, spatial averaging, stone, stress, structure, transition, turbulence closure, turbulence model, turbulent fluctuations, unity, variation, velocity profiles, volume-averaged

Funders

  • China Scholarship Council

Data Provider: Digital Science