Baroclinic Characteristics and Energetics of Annual Rossby Waves in the Southern Tropical Indian Ocean

Author:

Huang Ke123,Wang Dongxiao45,Feng Ming6,Han Weiqing7,Chen Gengxin123,Sun Chaojiao6,Zhang Xiaolin7,Xie Qiang189,Wang Weiqiang123,Liu Qinyan123,Yao Jinglong123

Affiliation:

1. a State Key Laboratory of Tropical Oceanography, South China Sea Institute of Oceanology, Chinese Academy of Sciences, Guangzhou, China

2. b Southern Marine Science and Engineering Guangdong Laboratory, Guangzhou, China

3. d Innovation Academy of South China Sea Ecology and Environmental Engineering, Chinese Academy of Sciences, Guangzhou, China

4. c Southern Marine Science and Engineering Guangdong Laboratory, Zhuhai, China

5. e School of Marine Sciences, Sun Yat-sen University, Guangzhou, China

6. f CSIRO Oceans and Atmosphere, Crawley, Western Australia, Australia

7. g Department of Atmospheric and Oceanic Sciences, University of Colorado Boulder, Boulder, Colorado

8. h Institute of Deep-Sea Science and Engineering, Chinese Academy of Sciences, Sanya, China

9. i Center for Ocean Mega-Science, Chinese Academy of Sciences, Qingdao, China

Abstract

AbstractThe first baroclinic mode Rossby wave is known to be of critical importance to the annual sea level variability in the southern tropical Indian Ocean (STIO; 0°–20°S, 50°–115°E). In this study, an analysis of continuously stratified linear ocean model reveals that the second baroclinic mode also has significant contribution to the annual sea level variability (as high as 81% of the first baroclinic mode). The contributions of residual high-order modes (3 ≤ n ≤ 25) are much less. The superposition of low-order (first and second) baroclinic Rossby waves (BRWs) primarily contribute to the high energy center of sea level variability at ~10°S in the STIO and the vertical energy penetration below the seasonal thermocline. We have found that 1) the low-order BRWs, having longer zonal wavelengths and weaker damping, can couple more efficiently to the local large-scale wind forcing than the high-order modes and 2) the zonal coherency of the Ekman pumping results in the latitudinal energy maximum of low-order BRWs. Overall, this study extends the traditional analysis to suggest the characteristics of the second baroclinic mode need to be taken into account in interpreting the annual variability in the STIO.

Funder

Strategic Priority Research Program of Chinese Academy of Sciences

Innovative Research Group Project of the National Natural Science Foundation of China

National Natural Science Foundation of China

Youth Innovation Promotion Association CAS

Guangzhou Science, Technology and Innovation Commission

National Key Research and Development Program of China

Publisher

American Meteorological Society

Subject

Oceanography

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