Modeling Bed Evolution Using Weakly Coupled Phase-Resolving Wave Model and Wave-Averaged Sediment Transport Model

被引:16
作者
Gallerano, Francesco [1 ]
Cannata, Giovanni [1 ]
De Gaudenzi, Oriana [1 ]
Scarpone, Simone [1 ]
机构
[1] Univ Roma La Sapienza, Dept Civil Construct & Environm Engn, Via Eudossiana 18, I-00184 Rome, Italy
关键词
Phase-resolving model; undertow; intra-wave quantities; sediment; transport; bed evolution dynamics; SUSPENDED SEDIMENT; NUMERICAL-MODEL; FORM; EQUATIONS; BREAKING; BEACHES;
D O I
10.1142/S057856341650011X
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In this paper, we propose a model for the simulation of the bed evolution dynamics in coastal regions characterized by articulated morphologies. An integral form of the fully nonlinear Boussinesq equations in contravariant formulation, in which Christoffel symbols are absent, is proposed in order to simulate hydrodynamic fields from deep water up to just seaward of the surf zones. Breaking wave propagation in the surf zone is simulated by integrating the nonlinear shallow water equations with a high-order shock-capturing scheme. The near-bed instantaneous flow velocity and the intra-wave hydrodynamic quantities are calculated by the momentum equation integrated over the turbulent boundary layer. The bed evolution dynamics is calculated starting from the contravariant formulation of the advection-diffusion equation for the suspended sediment concentration in which the advective sediment transport terms are formulated according to a quasi-three-dimensional approach, and taking into account the contribution given by the spatial variation of the bed load transport. The model is validated against several tests by comparing numerical results with experimental data. The ability of the proposed model to represent the sediment transport phenomena in a morphologically articulated coastal region is verified by numerically simulating the long-term bed evolution in the coastal region opposite Pescara harbor (in Italy) and comparing numerical results with the field data.
引用
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页数:50
相关论文
共 50 条
[1]   A general formula for noncohesive suspended sediment transport [J].
Camenen, Benoit ;
Larson, Magnus .
JOURNAL OF COASTAL RESEARCH, 2008, 24 (03) :615-627
[2]  
Choi J., 2008, COAST ENG J, V53, P63
[3]   Multi-objective analysis of dam release flows in rivers downstream from hydropower reservoirs [J].
Cioffi, F. ;
Gallerano, F. .
APPLIED MATHEMATICAL MODELLING, 2012, 36 (07) :2868-2887
[4]   MODELING OF UNDERTOW BY A ONE-EQUATION TURBULENCE MODEL [J].
DEIGAARD, R ;
JUSTESEN, P ;
FREDSOE, J .
COASTAL ENGINEERING, 1991, 15 (5-6) :431-458
[5]   SUSPENDED SEDIMENT IN THE SURF ZONE [J].
DEIGAARD, R ;
FREDSOE, J ;
HEDEGAARD, IB .
JOURNAL OF WATERWAY PORT COASTAL AND OCEAN ENGINEERING-ASCE, 1986, 112 (01) :115-128
[6]   Quasi-three-dimensional modelling of the morphology of longshore bars [J].
Dronen, N. ;
Deigaard, R. .
COASTAL ENGINEERING, 2007, 54 (03) :197-215
[7]  
ENGELUND F, 1976, NORD HYDROL, V7, P293
[8]   TURBULENT BOUNDARY-LAYER IN WAVE-CURRENT MOTION [J].
FREDSOE, J .
JOURNAL OF HYDRAULIC ENGINEERING-ASCE, 1984, 110 (08) :1103-1120
[9]   DISTRIBUTION OF SUSPENDED SEDIMENT IN LARGE WAVES [J].
FREDSOE, J ;
ANDERSEN, OH ;
SILBERG, S .
JOURNAL OF WATERWAY PORT COASTAL AND OCEAN ENGINEERING-ASCE, 1985, 111 (06) :1041-1059
[10]   Upwind WENO scheme for Shallow Water Equations in contravariant formulation [J].
Gallerano, F. ;
Cannata, G. ;
Tamburrino, M. .
COMPUTERS & FLUIDS, 2012, 62 :1-12