Propagation Features of Diurnal Internal Tides West of the Luzon Strait Revealed by a Large PIES Array

Author:

Wang Min12,Zhu Xiao-Hua123,Zheng Hua12,Chen Juntian2,Zhao Ruixiang2,Liu Zhao-Jun2,Ren Qiang45,Liu Yansong456,Nan Feng456,Yu Fei4567,Wang Jianfeng456,Li Qiang8

Affiliation:

1. a School of Oceanography, Shanghai Jiao Tong University, Shanghai, China

2. b State Key Laboratory of Satellite Ocean Environment Dynamics, Second Institute of Oceanography, Ministry of Natural Resources, Hangzhou, China

3. c Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Zhuhai, China

4. d Key Laboratory of Ocean Circulation and Waves, Institute of Oceanology, Chinese Academy of Sciences, Qingdao, China

5. e Center for Ocean Mega-Science, Chinese Academy of Sciences, Qingdao, China

6. f Marine Dynamic Process and Climate Function Laboratory, Pilot National Laboratory for Marine Science and Technology (Qingdao), Qingdao, China

7. g University of Chinese Academy of Sciences, Beijing, China

8. h Graduate School at Shenzhen, Tsinghua University, Shenzhen, China

Abstract

Abstract Energetic internal tides (ITs) are generated from the Luzon Strait (LS) and propagate westward into the South China Sea (SCS). Owing to the lack of large-scale synchronous measurements, the propagation features and seasonal variations of diurnal ITs remain unclear. From 2018 to 2019, mode-1 diurnal ITs west of the LS were continuously observed using a large-scale moored array of 27 pressure-recording inverted echo sounders (PIESs) and a thermistor chain. Measurements confirmed that diurnal ITs radiate from the LS with a north–south asymmetrical pattern, with the most energetic channel located in the middle and south of the LS. The total energy radiated into the SCS across 120°E is 2.67 GW for the K1 ITs and 1.54 GW for the O1 ITs, approximately 2 times larger than those inferred from satellite observations. K1 dominates among the diurnal ITs, with its maximum isopycnal displacement (amplitude) and energy input to the SCS being the strongest in summer (i.e., 16.3 m and 2.81 GW, respectively). The propagation speed of K1 is higher in summer and autumn along the main channel (i.e., 4.33and 4.36 m s−1, respectively). Seasonal stratification and circulation play important roles in the seasonal variation of amplitude and propagation speed of the K1 ITs. The seasonal variability of diurnal-band ITs, which includes all diurnal constituents, is location-dependent and primarily results from the superposition of the K1 and P1 ITs. In particular, vertical displacement is strong in summer and winter along the main channel of the K1 and P1 ITs. The seasonal amplitude of K1 can modulate this seasonal feature. Significance Statement Internal tides (ITs) are internal waves at tidal frequencies. The Luzon Strait (LS) is one of the most energetic sites to generate large-amplitude ITs. The ITs propagate into the South China Sea (SCS), interact with mesoscale eddies, large-scale circulations, etc., and influence local hydrodynamics as well as ecosystem and sediment transport. This motivated an observation plan to investigate the ITs at the western entrance of the LS. From June 2018 to August 2019, an array of 28 PIESs was deployed in the northeastern SCS, almost covering the western entrance of the LS, to investigate the propagation properties of ITs including their amplitude, phase speed, wavelength, propagation direction, and energy fluxes and their annual and seasonal variations. Here, we primarily focus on the mode-1 diurnal ITs. The new insights enrich our understanding of IT dynamics and seasonal variations and support further improvements in numerical simulations.

Funder

National Natural Science Foundation of China

Scientific Research Fund of Second Institute of Oceanography, MNR

Project of State Key Laboratory of Satellite Ocean Environment Dynamics, Second Institute of Oceanography

Oceanic Interdisciplinary Program of Shanghai Jiao Tong University

Innovation Group Project of Southern Marine Science and Engineering Guangdong Laboratory

Global Climate Changes and Air-sea Interaction Program

Publisher

American Meteorological Society

Subject

Oceanography

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