Generation and Evolution of Internal Solitary Waves in a Coastal Plain Estuary

被引:2
作者
Li, Renjian [1 ]
Li, Ming [1 ]
机构
[1] Univ Maryland, Ctr Environm Sci, Horn Point Lab, Cambridge, MD 21613 USA
关键词
Estuaries; Internal waves; Secondary circulation; Nonhydrostatic models; LATERAL CIRCULATION; NONLINEAR MODEL; TIDE TRANSFORMATION; LARGE SILL; LEE WAVES; TURBULENCE; BREAKING; OCEAN; FLOW; PROPAGATION;
D O I
10.1175/JPO-D-23-0151.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Large-amplitude internal solitary waves were recently observed in a coastal plain estuary and were hypothesized to evolve from an internal lee wave generated at the channel-shoal interface. To test this mechanism, a 3D nonhydrostatic model with nested domains and adaptive grids was used to investigate the generation of the internal solitary waves and their subsequent nonlinear evolution. A complex sequence of wave propagation and transformation was documented and interpreted using the nonlinear wave theory based on the Korteweg-de Vries equation. During the ebb tide a mode -2 internal lee wave is generated by the interaction between lateral flows and channel-shoal topography. This mode -2 lee wave subsequently propagates onto the shallow shoal and transforms into a mode -1 wave of elevation as strong mixing on the flood tide erases stratification in the bottom boundary layer and the lower branch of the mode -2 wave. The mode -1 wave of elevation evolves into an internal solitary wave due to nonlinear steepening and spatial changes in the wave phase speed. As the solitary wave of elevation continues to propagate over the shoaling bottom, the leading edge moves ahead as a rarefaction wave while the trailing edge steepens and disintegrates into a train of rank -ordered internal solitary waves, due to the combined effects of shoaling and dispersion. Strong turbulence in the bottom boundary layer dissipates wave energy and causes the eventual destruction of the solitary waves. In the meantime, the internal solitary waves can generate elevated shear and dissipation rate in local regions. SIGNIFICANCE STATEMENT: In the coastal ocean nonlinear internal solitary waves are widely recognized to play an important role in generating turbulent mixing, modulating short -term variability of nearshore ecosystem, and transporting sediment and biochemical materials. However, their effects on shallow and stratified estuaries are poorly known and have been rarely studied. The nonhydrostatic model simulations presented in this paper shed new light into the generation, propagation, and transformation of the internal solitary waves in a coastal plain estuary.
引用
收藏
页码:641 / 652
页数:12
相关论文
共 50 条
  • [41] A numerical simulation of the generation and evolution of nonlinear internal waves across the Kara Strait
    Li, Qun
    Wu, Huiding
    Yang, Hongwei
    Zhang, Zhanhai
    ACTA OCEANOLOGICA SINICA, 2019, 38 (05) : 1 - 9
  • [42] NUMERICAL STUDIES OF INTERNAL SOLITARY WAVE GENERATION AND EVOLUTION BY GRAVITY COLLAPSE
    Lin Zhen-hua
    Song Jin-bao
    JOURNAL OF HYDRODYNAMICS, 2012, 24 (04) : 541 - 553
  • [43] Generation of internal solitary wave by gravity collapse
    Chen, Chen-Yuan
    Hsu, John Rong-Chung
    Chen, Cheng-Wu
    Chen, Hsin-Hsun
    Kuo, Ching-Feng
    Cheng, Min-Hung
    JOURNAL OF MARINE SCIENCE AND TECHNOLOGY-TAIWAN, 2007, 15 (01): : 1 - 7
  • [44] Tidal variability of lateral advection in a coastal plain estuary
    Basdurak, N. B.
    Valle-Levinson, A.
    CONTINENTAL SHELF RESEARCH, 2013, 61-62 : 85 - 97
  • [45] Generation characteristics of internal solitary waves in the Northern Andaman sea based on MODIS observations and numerical simulations
    Huang, Songsong
    Wang, Jing
    Li, Zhixin
    Yang, Zhan
    Lu, Yage
    FRONTIERS IN MARINE SCIENCE, 2024, 11
  • [46] Topographically induced internal solitary waves in a pycnocline: Secondary generation and selection criteria
    Dossmann, Y.
    Auclair, F.
    Paci, A.
    PHYSICS OF FLUIDS, 2013, 25 (08)
  • [47] Topographically induced internal solitary waves in a pycnocline: Primary generation and topographic control
    Dossmann, Y.
    Auclair, F.
    Paci, A.
    PHYSICS OF FLUIDS, 2013, 25 (06)
  • [48] Generation of second-mode internal solitary waves during winter in the northern South China Sea
    Liang, Jianjun
    Li, Xiao-Ming
    OCEAN DYNAMICS, 2019, 69 (03) : 313 - 321
  • [49] Evidence of Reflected Internal Solitary Waves in the Strait of Gibraltar
    Roustan, Jean-Baptiste
    Bordois, Lucie
    Garcia-Lafuente, Jesus
    Dumas, Franck
    Auclair, Francis
    Carton, Xavier
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2024, 129 (02)
  • [50] An Overview of Internal Solitary Waves in the South China Sea
    Cai, Shuqun
    Xie, Jieshuo
    He, Jianling
    SURVEYS IN GEOPHYSICS, 2012, 33 (05) : 927 - 943