학술논문

Progress on Nonlinear-Wave-Forced Sediment Transport Simulation
Document Type
Periodical
Source
IEEE Journal of Oceanic Engineering IEEE J. Oceanic Eng. Oceanic Engineering, IEEE Journal of. 32(1):236-248 Jan, 2007
Subject
Geoscience
Power, Energy and Industry Applications
Sediments
Sea measurements
Oceans
Nonlinear equations
Boundary element methods
Laboratories
Pistons
Frequency modulation
Computational fluid dynamics
Computational modeling
Boundary element method (BEM)
coastal processes
computational fluid dynamics
model coupling
nonlinear waves
sediment transport
Language
ISSN
0364-9059
1558-1691
2373-7786
Abstract
In this paper, we report on the use of a numerical wave tank (NWT), based on fully nonlinear potential flow (FNPF) equations, in driving simulations of flow and sediment transport around partially buried obstacles. The suspended sediment transport is modeled in the near-field in a Navier–Stokes (NS) model using an immersed-boundary method and an attached sediment transport simulation module. Turbulence is represented by large eddy simulation (LES). The NWT is based on a higher order boundary element method (BEM), with an explicit second-order time stepping. Hence, only the NWT boundary is discretized. The solution for the velocity potential and its derivatives along the boundary is obtained in the BEM, which subsequently provides a solution at any required internal point within the domain. At initial time, the NS–LES model domain is initialized with the 3-D velocity field provided by the NWT and driven for later time by the pressure gradient field obtained in the NWT. Incident wave fields, as specified in the NWT to drive sediment transport, can be arbitrary. Applications are presented here for single frequency waves, such as produced by a harmonic piston wavemaker in the laboratory, and modulated frequency wave groups. The feasibility of coupling the irrotational flow and NS solutions is demonstrated.