Shear Instability in Internal Solitary Waves in the Northern South China Sea Induced by Multiscale Background Processes

Author:

Huang Siwei12,Huang Xiaodong123,Zhao Wei123,Chang Zeyu12,Xu Xing12,Yang Qingxuan123,Tian Jiwei123

Affiliation:

1. a Frontiers Science Center for Deep Ocean Multispheres and Earth System (FDOMES) and Physical Oceanography Laboratory, Ocean University of China, Qingdao, China

2. b Sanya Oceanographic Institution, Ocean University of China, Sanya, China

3. c Qingdao National Laboratory for Marine Science and Technology, Qingdao, China

Abstract

Abstract Instability within internal solitary waves (ISWs), featured by temperature inversions with vertical lengths of dozens of meters and current reversals in the upper shoreward velocity layer, was observed in the northern South China Sea at a water depth of 982 m by using mooring measurements between June 2017 and May 2018. Regions of shear instability satisfying Ri < 1/4 were found within those unstable ISWs, and some large ISWs were even possibly in the breaking state, indicated by the ratio of Lx (wave width satisfying Ri < 1/4) to λη/2 (wavelength at half amplitude) larger than 0.86. Wave stability analyses revealed that the observed wave shear instability was induced by strong background current shear associated with multiscale dynamic processes, which greatly strengthened wave shear by introducing sharp perturbations to the fine-scale vertical structures of ISWs. During the observational period, wave shear instability was strong in summer (July–September) while weak in winter (January–March). Sensitivity experiments revealed that the observed shear instability was prone to be triggered within large ISWs by the background current shear and sensitive to the pycnocline depth in the background stratification. However, shear instability within ISWs was observed to be promoted during mid-January, as the near-inertial waves trapped inside an anticyclonic eddy resulted in enhanced background current shear between 150 and 300 m. This work emphasizes the notable impacts of multiscale background processes on ISWs in the oceans.

Funder

National Natural Science Foundation of China

National Key Research and Development Program

2019 Research Program of Sanya Yazhou Bay Science and Technology City

Natural Science Outstanding Youth Fund of Shandong Province

Hainan Provincial Joint Project of Sanya Yazhou Bay Science and Technology City

CNOOC Science and Technology Project

Publisher

American Meteorological Society

Subject

Oceanography

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