A New Model for Cross-Shore Surf and Swash Zone Morphology Evolution Induced by Nonlinear Waves

被引:0
|
作者
Samaras, Achilleas G. [1 ]
Karambas, Theophanis V. [2 ]
机构
[1] Democritus Univ Thrace, Xanthi, Greece
[2] Aristotle Univ Thessaloniki, Thessaloniki, Greece
关键词
Numerical model; Boussinesq equations; Coastal morphology; Erosion; Accretion; BEACH; CURRENTS;
D O I
10.3850/IAHR-39WC2521716X2022705
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
This work presents a new model for surf and swash zone morphology evolution induced by nonlinear waves. The nonlinear wave transformation in the surf and swash zone is computed by a nonlinear breaking wave model based on the higher order Boussinesq equations for breaking and non-breaking waves. Regarding sediment transport, this work builds on the improvements introduced by Karambas and Samaras (2014) and adopts the latest update of the transport formula of Camenen and Larson (2007) proposed by Zhang and Larson (2020). The wave and morphology evolution model is tested against two sets of experiments on beach profile change. The innovation of this work is the validation of a new Boussinesq-type morphology model under both erosive and accretive conditions in the foreshore (accretion is rarely examined in similar studies), which the model reproduces very well without modification of the empirical coefficients of the sediment transport formula used and without the use of an erosion/accretion criterion. The presented set of applications highlights model capabilities, as well as its suitability for coastal erosion mitigation and beach restoration design.
引用
收藏
页码:5788 / 5791
页数:4
相关论文
共 48 条
  • [21] Surf zone dynamics simulated by a Boussinesq type model. Part I. Model description and cross-shore motion of regular waves
    Madsen, PA
    Sorensen, OR
    Schaffer, HA
    COASTAL ENGINEERING, 1997, 32 (04) : 255 - 287
  • [22] A CROSS-SHORE BEACH PROFILE EVOLUTION MODEL
    Jayaratne, Mantripathi Prabath Ravindra
    Rahman, Md Rezaur
    Shibayama, Tomoya
    COASTAL ENGINEERING JOURNAL, 2014, 56 (04)
  • [23] Reply to discussion of "Cross-shore hydrodynamics within an unsaturated surf zone" by Yoshimi Goda
    Baldock, TE
    Holmes, P
    Bunker, S
    Van Weert, P
    COASTAL ENGINEERING, 1999, 36 (02) : 167 - 168
  • [24] Swash-by-swash morphology change on a dynamic cobble berm revetment: High-resolution cross-shore measurements
    Bayle, Paul M.
    Blenkinsopp, Chris E.
    Martins, Kevin
    Kaminsky, George M.
    Weiner, Heather M.
    Cottrell, David
    COASTAL ENGINEERING, 2023, 184
  • [25] Cross-shore suspended sediment transport in the surf zone: a field-based parameterization
    Aagaard, T
    Black, KP
    Greenwood, B
    MARINE GEOLOGY, 2002, 185 (3-4) : 283 - 302
  • [26] Vertical structure of near-bed cross-shore flow velocities in the swash zone of a dissipative beach
    Inch, Kris
    Masselink, Gerd
    Puleo, Jack A.
    Russell, Paul
    Conley, Daniel C.
    CONTINENTAL SHELF RESEARCH, 2015, 101 : 98 - 108
  • [27] Directionality of cross-shore sediment transport in the surf zone under high-energy conditions
    Aagaard, T
    Greenwood, B
    COASTAL SEDIMENTS '99, VOLS 1-3, 1999, : 1003 - 1018
  • [28] Application of a cross-shore profile evolution model to barred beaches
    Elsayed, Mohamed A. K.
    JOURNAL OF COASTAL RESEARCH, 2006, 22 (03) : 645 - 663
  • [29] Surf zone cross-shore boundary layer velocity asymmetry and skewness: An experimental study on a mobile bed
    Berni, C.
    Barthelemy, E.
    Michallet, H.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2013, 118 (04) : 2188 - 2200
  • [30] Large-scale experiments on beach profile evolution and surf and swash zone sediment transport induced by long waves, wave groups and random waves
    Baldock, T. E.
    Alsina, J. A.
    Caceres, I.
    Vicinanza, D.
    Contestabile, P.
    Power, H.
    Sanchez-Arcilla, A.
    COASTAL ENGINEERING, 2011, 58 (02) : 214 - 227