Investigation of the Internal Tides in the Northwest Pacific Ocean Considering the Background Circulation and Stratification

被引:32
作者
Song, Pengyang [1 ]
Chen, Xueen [1 ]
机构
[1] Ocean Univ China, Key Lab Phys Oceanog, Qingdao, Peoples R China
基金
美国国家科学基金会;
关键词
North Pacific Ocean; Energy transport; Internal waves; Ocean dynamics; Tides; General circulation models; SOUTH; SURFACE; VARIABILITY; GENERATION; PROPAGATION; MODEL; WAVES; ENERGETICS; RADIATION; ACCURACY;
D O I
10.1175/JPO-D-19-0177.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
A global ocean circulation and tide model with nonuniform resolution is used in this work to resolve the ocean circulation globally as well as mesoscale eddies and internal tides regionally. Focusing on the northwest Pacific Ocean (NWP, 0 degrees-35 degrees N, 105 degrees-150 degrees E), a realistic experiment is conducted to simulate internal tides considering the background circulation and stratification. To investigate the influence of a background field on the generation and propagation of internal tides, idealized cases with horizontally homogeneous stratification and zero surface fluxes are also implemented for comparison. By comparing the realistic cases with idealized ones, the astronomical tidal forcing is found to be the dominant factor influencing the internal tide conversion rate magnitude, whereas the stratification acts as a secondary factor. However, stratification deviations in different areas can lead to an error exceeding 30% in the local internal tide energy conversion rate, indicating the necessity of a realistic stratification setting for simulating the entire NWP. The background shear is found to refract propagating diurnal internal tides by changing the effective Coriolis frequencies and phase speeds, while the Doppler-shifting effect is remarkable for introducing biases to semidiurnal results. In addition, nonlinear baroclinic tide energy equations considering the background circulation and stratification are derived and diagnosed in this work. The mean flow-baroclinic tide interaction and nonlinear energy flux are the most significant nonlinear terms in the derived equations, and nonlinearity is estimated to contribute approximately 5% of the total internal tide energy in the greater Luzon Strait area.
引用
收藏
页码:3165 / 3188
页数:24
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