Material dispersion by oceanic internal waves

被引:0
|
作者
Peng Wang
Tamay M. Özgökmen
Angelique C. Haza
机构
[1] University of Miami,Rosenstiel School of Marine and Atmospheric Science
来源
关键词
Relative dispersion; Finite-scale Lyapunov exponent (FSLE); Garrett–Munk spectrum; Inertial oscillation;
D O I
暂无
中图分类号
学科分类号
摘要
Internal gravity waves that are generated in the open ocean have a universal frequency spectrum, called Garrett–Munk spectrum. By initializing internal waves that satisfy the Garrett–Munk spectrum in a non-hydrostatic numerical model, we investigate the material dispersion produced by these internal waves. Three numerical experiments are designed: Exp.-1 uses a linearly stratified fluid, Exp.-2 has an upper mixed layer, and Exp.-3 incorporates a circular front into the upper mixed layer. Resorting to neutrally buoyant particles, we investigate the dispersion in terms of metrics of the relative dispersion and finite-scale Lyapunov exponent (FSLE). Exp.-1 shows that the dispersion regime produced by these internal waves is between ballistic and diffusive based on relative dispersion, and is however ballistic according to FSLE. The maximum FSLE at scales of 100 m is about 5 day-1\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$$^{-1}$$\end{document}, which is comparable to that calculated using ocean drifters. Exp.-2 demonstrates that internal waves can generate flows and material dispersion in an upper mixed layer. However, when mixed layer eddies are present, as in Exp.-3, the dispersion in the mixed layer is controlled by the eddies. In addition, we show that inertial oscillations do not affect the relative dispersion, but impact FSLE at scales of inertial oscillations.
引用
收藏
页码:149 / 171
页数:22
相关论文
共 50 条
  • [21] ON THE ELECTROMAGNETIC-FIELDS INDUCED BY OCEANIC INTERNAL WAVES
    CHAVE, AD
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1984, 89 (NC6): : 519 - 528
  • [22] Oceanic Mesoscale Eddy Depletion Catalyzed by Internal Waves
    Barkan, Roy
    Srinivasan, Kaushik
    Yang, Luwei
    McWilliams, James C.
    Gula, Jonathan
    Vic, Clement
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (18)
  • [23] Radar signatures of oceanic and atmospheric internal waves: A comparison
    Alpers, W
    OCEANS '96 MTS/IEEE, CONFERENCE PROCEEDINGS, VOLS 1-3 / SUPPLEMENTARY PROCEEDINGS: COASTAL OCEAN - PROSPECTS FOR THE 21ST CENTURY, 1996, : 873 - 880
  • [24] Oceanic internal waves generated by the Tongan volcano eruption
    Zhang, Xudong
    Li, Xiaofeng
    ACTA OCEANOLOGICA SINICA, 2022, 41 (08) : 1 - 4
  • [25] Oceanic internal waves generated by the Tongan volcano eruption
    Xudong Zhang
    Xiaofeng Li
    Acta Oceanologica Sinica, 2022, 41 : 1 - 4
  • [26] Simulation Study on SAR Images of the Oceanic Internal Waves
    种劲松
    李飞
    欧阳越
    Journal of Measurement Science and Instrumentation, 2010, 1 (01) : 37 - 40
  • [27] DYNAMICS AND ENERGY-BALANCE OF OCEANIC INTERNAL WAVES
    MULLER, P
    MCCOMAS, CH
    AIP CONFERENCE PROCEEDINGS, 1981, (76) : 181 - 201
  • [28] Generalized transport characterizations for short oceanic internal waves in a sea of long waves
    Lvov, Yuri V.
    Polzin, Kurt L.
    JOURNAL OF FLUID MECHANICS, 2024, 987
  • [29] On the dispersion of pairs of internal inertial gravity waves
    Thorpe, SA
    JOURNAL OF MARINE RESEARCH, 2002, 60 (03) : 461 - 476
  • [30] ON THE DISPERSION-RELATION FOR TRAPPED INTERNAL WAVES
    BARBER, BC
    JOURNAL OF FLUID MECHANICS, 1993, 252 : 31 - 49