Interference Pattern and Propagation of the M2 Internal Tide South of the Hawaiian Ridge

被引:92
作者
Rainville, Luc [1 ]
Johnston, T. M. Shaun [2 ]
Carter, Glenn S. [3 ]
Merrifield, Mark A. [3 ]
Pinkel, Robert [2 ]
Worcester, Peter F. [2 ]
Dushaw, Brian D. [1 ]
机构
[1] Univ Washington, Appl Phys Lab, Seattle, WA 98105 USA
[2] Univ Calif San Diego, Scripps Inst Oceanog, La Jolla, CA 92093 USA
[3] Univ Hawaii Manoa, Dept Oceanog, Honolulu, HI 96822 USA
基金
美国国家科学基金会;
关键词
ENERGY FLUXES; DEEP-OCEAN; PACIFIC; WAVES; VARIABILITY; SCATTERING; ENERGETICS; TURBULENCE; ALTIMETRY; ISLANDS;
D O I
10.1175/2009JPO4256.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Most of the M-2 internal tide energy generated at the Hawaiian Ridge radiates away in modes 1 and 2, but direct observation of these propagating waves is complicated by the complexity of the bathymetry at the generation region and by the presence of interference patterns. Observations from satellite altimetry, a tomographic array, and the R/P FLIP taken during the Farfield Program of the Hawaiian Ocean Mixing Experiment (HOME) are found to be in good agreement with the output of a high-resolution primitive equation model, simulating the generation and propagation of internal tides. The model shows that different modes are generated with different amplitudes along complex topography. Multiple sources produce internal tides that sum constructively and destructively as they propagate. The major generation sites can be identified using a simplified 2D idealized knife-edge ridge model. Four line sources located on the Hawaiian Ridge reproduce the interference pattern of sea surface height and energy flux density fields from the numerical model for modes 1 and 2. Waves from multiple sources and their interference pattern have to be taken into account to correctly interpret in situ observations and satellite altimetry.
引用
收藏
页码:311 / 325
页数:15
相关论文
共 50 条
  • [31] Estimates of global M2 internal tide energy fluxes using TOPEX/POSEIDON altimeter data
    Zhang Yanwei
    Liang Xinfeng
    Tian Jiwei
    Yang Lifen
    [J]. CHINESE JOURNAL OF OCEANOLOGY AND LIMNOLOGY, 2009, 27 (01) : 129 - 134
  • [32] Seasonal M2 Internal Tides in the Arabian Sea
    Ma, Jingyi
    Guo, Daquan
    Zhan, Peng
    Hoteit, Ibrahim
    [J]. REMOTE SENSING, 2021, 13 (14)
  • [33] Three-dimensional numerical simulation of M2 internal tides in the Luzon Strait
    Li Bingtian
    Cao Anzhou
    Lv Xianqing
    [J]. ACTA OCEANOLOGICA SINICA, 2015, 34 (11) : 55 - 62
  • [34] Radiation and energetics of M2 internal tides in the Okhotsk Sea
    Li, Qun
    Wang, Shuya
    Chen, Xu
    [J]. DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2023, 199
  • [35] Effects of Remote Generation Sites on Model Estimates of M2 Internal Tides in the Philippine Sea
    Kerry, Colette G.
    Powell, Brian S.
    Carter, Glenn S.
    [J]. JOURNAL OF PHYSICAL OCEANOGRAPHY, 2013, 43 (01) : 187 - 204
  • [36] The Influence of Arctic Landfast Ice on Seasonal Modulation of the M2 Tide
    de Vaate, I. Bij
    Vasulkar, A. N.
    Slobbe, D. C.
    Verlaan, M.
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2021, 126 (05)
  • [37] Energetics of the M2 internal tides modulated by typhoons at the Luzon Strait
    Cao, Anzhou
    Guo, Zheng
    Wang, Shuya
    Chen, Xu
    Song, Jinbao
    Guo, Xinyu
    [J]. OCEAN MODELLING, 2023, 186
  • [38] High-Resolution Modeling of the M2 Internal Tide in the Ice-Free East Siberian Sea: Dynamics and Energetics
    Kagan, B. A.
    Timofeev, A. A.
    [J]. IZVESTIYA ATMOSPHERIC AND OCEANIC PHYSICS, 2024, 60 (06) : 633 - 643
  • [39] Satellite Evidence for Strengthened M2 Internal Tides in the Past 30 Years
    Zhao, Zhongxiang
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2023, 50 (24)
  • [40] Temporal changes in the response of the nodal modulation of the M2 tide in the Gulf of Maine
    Pan, Haidong
    Zheng, Quanxin
    Lv, Xianqing
    [J]. CONTINENTAL SHELF RESEARCH, 2019, 186 : 13 - 20