Development, calibration and validation of a phase-averaged model for cross-shore sediment transport and morphodynamics on a barred beach

被引:5
|
作者
Zheng, Peng [1 ,2 ]
Gumbira, Gugum [3 ]
Li, Ming [3 ]
Van der Zanden, Joep [4 ,5 ]
Van Der Dominic, A. [6 ]
Van der Werf, Jebbe [5 ,7 ]
Chen, Xueen [2 ]
Tang, Xiaonan [8 ]
机构
[1] Minist Transport, Tianjin Res Inst Water Transport Engn, Key Lab Environm Protect Technol Water Transport, MOT, Tianjin 300456, Peoples R China
[2] Ocean Univ China, Frontier Sci Ctr Deep Ocean Multispheres & Earth S, Qingdao 266100, Peoples R China
[3] Univ Liverpool, Sch Engn, Dept Civil Engn & Ind Design, Liverpool L69 3GQ, England
[4] Maritime Res Inst Netherlands, Offshore Dept, Haagsteeg 2, NL-6708 PM Wageningen, Netherlands
[5] Univ Twente, Dept Water Engn & Management, POB 217, NL-7500 AE Enschede, Netherlands
[6] Univ Aberdeen, Sch Engn, Aberdeen AB24 3U, Scotland
[7] Deltares, Dept Marine & Coastal Syst, POB 177, NL-2600 MH Delft, Netherlands
[8] Xian Jiaotong Liverpool Univ, Dept Civil Engn, Suzhou, Jiangsu, Peoples R China
基金
荷兰研究理事会; 英国工程与自然科学研究理事会; 中国国家自然科学基金;
关键词
Cross; -shore; Sediment transport; Beach morphology; Numerical modelling; Wave asymmetry; TURBULENCE CLOSURE MODELS; WAVE-ENHANCED TURBULENCE; BREAKER BAR; SURF-ZONE; COASTAL OCEAN; FLOW; HYDRODYNAMICS; CURRENTS; LAYER;
D O I
10.1016/j.csr.2023.104989
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Simulating cross-shore sediment transport and associated sandbar migration is still a challenging task for phaseaveraged coastal morphological models. Numerical studies have mostly relied on beach morphology prediction for calibration and validation, without examining in much detail the underlying hydrodynamics, sediment concentrations and transport rates. This paper reports on a new three-dimensional coastal morphodynamic model based on the hydrodynamic model of Zheng et al. (2017), combined with an advection-diffusion type suspended sediment transport model and the extended SANTOSS near-bed sediment transport formula of Van der A et al. (2013), to represent the key cross-shore transport mechanisms. The model is are calibrated based on comprehensive measurements from a large-scale laboratory experiment involving regular plunging breaking waves over an evolving sandbar, covering detailed comparisons on hydrodynamics, sediment suspension, transport rates, and bed level evolution. Separate validation using large scale wave flume experiments were also conducted to confirm the model's performance on different conditions. Good agreements are obtained between measurements and model results, which demonstrates the model's ability to reproduce cross-shore sediment transport processes under breaking waves correctly, given that the appropriate parameterizations for intra-wave processes are included. Model results also reveal the onshore near-bed transport is related to wave-induced nearbed streaming, wave skewness and asymmetry, and bed slope effects at different locations across the beach surface. Wave breaking-induced turbulence enhances the near-bed transport within the bed boundary layer which needs to be taken into account in order to achieve good model prediction skills.
引用
收藏
页数:24
相关论文
共 41 条
  • [21] Modeling cross-shore sediment transport processes with a time domain Boussinesq model
    Long, W
    Hsu, TJ
    Kirby, JT
    COASTAL ENGINEERING 2004, VOLS 1-4, 2005, : 1874 - 1886
  • [22] FREQUENCY-DEPENDENT CROSS-SHORE SUSPENDED SEDIMENT TRANSPORT .1. A NON-BARRED SHOREFACE
    OSBORNE, PD
    GREENWOOD, B
    MARINE GEOLOGY, 1992, 106 (1-2) : 1 - 24
  • [23] SIMPLE MODEL OF CROSS-SHORE SEDIMENT TRANSPORT RATE FOR BERM FORMATION AND EROSION
    Suzuki, Takayuki
    Kuriyama, Yoshiaki
    COASTAL ENGINEERING 2008, VOLS 1-5, 2009, : 1762 - 1773
  • [24] Morphologic properties derived from a simple cross-shore sediment transport model
    Plant, NG
    Ruessink, BG
    Wijnberg, KM
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2001, 106 (C1) : 945 - 958
  • [25] Modelling the effects of macrofauna on sediment transport and bed elevation: Application over a cross-shore mudflat profile and model validation
    Orvain, Francis
    Le Hir, Pierre
    Sauriau, Pierre-Guy
    Lefebvre, Sebastien
    ESTUARINE COASTAL AND SHELF SCIENCE, 2012, 108 : 64 - 75
  • [26] Cross-shore sediment transport and morphological response on a macrotidal beach with intertidal bar morphology, Truc Vert, France
    Masselink, Gerhard
    Austin, Martin
    Tinker, Jon
    O'Hare, Tim
    Russell, Paul
    MARINE GEOLOGY, 2008, 251 (3-4) : 141 - 155
  • [27] Numerical Simulations of Coastal Overwash Using A Phase-Averaged Wave—Current—Sediment Transport Model
    Song-zhe Li
    Chao Ji
    Qing-he Zhang
    Tong-qing Chen
    China Ocean Engineering, 2022, 36 : 191 - 207
  • [28] Numerical Simulations of Coastal Overwash Using A Phase-Averaged Wave-Current-Sediment Transport Model
    Li Song-zhe
    Ji Chao
    Zhang Qing-he
    Chen Tong-qing
    CHINA OCEAN ENGINEERING, 2022, 36 (02) : 191 - 207
  • [29] Numerical Simulations of Coastal Overwash Using A Phase-Averaged Wave-Current-Sediment Transport Model
    LI Song-zhe
    JI Chao
    ZHANG Qing-he
    CHEN Tong-qing
    China Ocean Engineering, 2022, 36 (02) : 191 - 207
  • [30] Influence of Climate Change on Bimodal Cross-Shore Distributions of the Longshore Sediment Transport Rate and Current Velocity on a Dissipative Sandy Beach
    Kuriyama, Y.
    Banno, M.
    JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2025, 130 (04)