Long lived second mode internal solitary waves in the Andaman Sea

被引:30
作者
Magalhaes, J. M. [1 ,2 ]
da Silva, J. C. B. [1 ,2 ]
Buijsman, M. C. [3 ]
机构
[1] Univ Porto, Fac Sci, Dept Geosci Environm & Spatial Planning DGAOT, Porto, Portugal
[2] Interdisciplinary Ctr Marine & Environm Res CIIMA, Matosinhos, Portugal
[3] Univ Southern Mississippi, Div Marine Sci, Stennis Space Ctr, MS USA
基金
美国国家科学基金会;
关键词
OCEAN; ENERGY; TIDES; RIDGE;
D O I
10.1038/s41598-020-66335-9
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Internal waves are density oscillations propagating along the ocean's inner stratification, which are now acknowledged as a key constituent of the ocean's dynamics. They usually result from barotropic tides, which flow over bottom topography, causing density oscillations to propagate along the pycnocline with a tidal frequency (i.e. internal tides). These large-scale waves propagate away from their forcing bathymetry and frequently disintegrate into nonlinear short-scale (higher-frequency) internal wave packets. Typically, short-scale internal wave observations in the ocean are associated with vertical structures (in the water column) of the lowest fundamental mode. Higher vertical modes have recently been documented as well, but these are commonly short-lived (up to a few hours). However, unprecedented satellite images showing long-lived short-scale mode-2 internal waves have now been documented in the Andaman Sea, and we report here the companion results of a non-hydrostatic and fully nonlinear numerical model. The simulations reproduce the waves' main characteristics as observed in satellite imagery, and the results suggest a resonant coupling with a larger-scale mode-4 internal tide as an explanation for their long-lived character.
引用
收藏
页数:10
相关论文
共 50 条
[41]   Seismic, satellite, and site observations of internal solitary waves in the NE South China Sea [J].
Tang, Qunshu ;
Wang, Caixia ;
Wang, Dongxiao ;
Pawlowicz, Rich .
SCIENTIFIC REPORTS, 2014, 4
[42]   Shoaling of the internal solitary waves over the continental shelf of the northern South China Sea [J].
Qian Hongbao ;
Huang Xiaodong ;
Tian Jiwei ;
Zhao Wei .
ACTA OCEANOLOGICA SINICA, 2015, 34 (09) :35-42
[43]   Study on the Characteristics of Internal Solitary Waves in Arctic Kara Sea Based on SAR Images [J].
Yang, Zhan ;
Wang, Jing ;
Li, Zhixin ;
Lu, Yage ;
Huang, Songsong ;
Sun, Lina ;
Meng, Junmin .
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2024, 62
[44]   Monthly variation of some parameters about internal solitary waves in the South China sea [J].
Cai, Shuqun ;
Xie, Jieshuo ;
Xu, Jiexin ;
Wang, Dongxiao ;
Chen, Zhiwu ;
Deng, Xiaodong ;
Long, Xiaomin .
DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2014, 84 :73-85
[45]   Breaking of shoaling internal solitary waves [J].
Aghsaee, Payam ;
Boegman, Leon ;
Lamb, Kevin G. .
JOURNAL OF FLUID MECHANICS, 2010, 659 :289-317
[46]   Effects of rotation on internal solitary waves [J].
Nakayama, Keisuke ;
Tashita, Kento ;
Shintani, Tetsuya .
APPLIED OCEAN RESEARCH, 2024, 149
[47]   The influence of background waves on internal solitary waves after the transit of Typhoon Neast in the northern South China Sea [J].
Lin Feilong ;
Hou Yijun ;
Liu Ze ;
Hu Po ;
Fang Yong ;
Duan Yongliang .
ACTA OCEANOLOGICA SINICA, 2014, 33 (07) :40-47
[48]   Generation and evolution of internal solitary waves in the southern Taiwan Strait [J].
Min, Wenjia ;
Li, Qun ;
Zhang, Peiwen ;
Xu, Zhenhua ;
Yin, Baoshu .
GEOPHYSICAL AND ASTROPHYSICAL FLUID DYNAMICS, 2019, 113 (03) :287-302
[49]   Generation of Internal Solitary Waves by Lateral Circulation in a Stratified Estuary [J].
Xie, Xiaohui ;
Li, Ming ;
Scully, Malcolm ;
Boicourt, William C. .
JOURNAL OF PHYSICAL OCEANOGRAPHY, 2017, 47 (07) :1789-1797
[50]   Evidence of short internal waves trailing strong internal solitary waves in the northern South China Sea from synthetic aperture radar observations [J].
Guo, C. ;
Vlasenko, V. ;
Alpers, W. ;
Stashchuk, N. ;
Chen, X. .
REMOTE SENSING OF ENVIRONMENT, 2012, 124 :542-550