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首页> 外文期刊>Journal of Physical Oceanography >Baroclinic Characteristics and Energetics of Annual Rossby Waves in the Southern Tropical Indian Ocean
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Baroclinic Characteristics and Energetics of Annual Rossby Waves in the Southern Tropical Indian Ocean

机译:南方热带印度洋中罗斯比浪潮的曲金特征及精力充沛

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摘要

The 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 degrees-20 degrees S, 50 degrees-115 degrees 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 similar to 10 degrees 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.
机译:众所周知,第一个曲金模式Rossby Wave对热带印度洋(Stio; 0度-20度,50度-115度)的年度海平面变异性至关重要。在该研究中,对连续分层的线性海洋模型的分析表明,第二个律林模式对年海平面变异性具有重大贡献(高达第一个律键模式的81%)。剩余高阶模式的贡献(3 <= n <= 25)少得多。低阶(第一和第二)曲金罗斯比波(BRWS)的叠加主要有助于在STIO中类似于10摄氏度的海平面变异性和季节性热水下方的垂直能量渗透。我们已经发现,1)具有较长的区域波长和较弱阻尼的低位BRW,可以更有效地耦合到局部大型风强制而不是高阶模式和2)EKMAN泵送结果的区域一致性低阶BRW的纬度最大值。总体而言,该研究扩展了传统的分析,提出了在解释STIO的年度变异方面需要考虑第二个曲中模式的特征。

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  • 来源
    《Journal of Physical Oceanography》 |2020年第9期|2591-2607|共17页
  • 作者单位

    Chinese Acad Sci South China Sea Inst Oceanol State Key Lab Trop Oceanog Guangzhou Peoples R China|Southern Marine Sci & Engn Guangdong Lab Guangzhou Peoples R China|Chinese Acad Sci Innovat Acad South China Sea Ecol & Environm Engn Guangzhou Peoples R China;

    Southern Marine Sci & Engn Guangdong Lab Zhuhai Peoples R China|Sun Yat Sen Univ Sch Marine Sci Guangzhou Peoples R China;

    CSIRO Oceans & Atmosphere Crawley WA Australia;

    Univ Colorado Dept Atmospher & Ocean Sci Boulder CO 80309 USA;

    Chinese Acad Sci South China Sea Inst Oceanol State Key Lab Trop Oceanog Guangzhou Peoples R China|Southern Marine Sci & Engn Guangdong Lab Guangzhou Peoples R China|Chinese Acad Sci Innovat Acad South China Sea Ecol & Environm Engn Guangzhou Peoples R China;

    CSIRO Oceans & Atmosphere Crawley WA Australia;

    Univ Colorado Dept Atmospher & Ocean Sci Boulder CO 80309 USA|Univ Hamburg Hamburg Germany;

    Chinese Acad Sci South China Sea Inst Oceanol State Key Lab Trop Oceanog Guangzhou Peoples R China|Chinese Acad Sci Inst Deep Sea Sci & Engn Sanya Peoples R China|Chinese Acad Sci Ctr Ocean Megasci Qingdao Peoples R China;

    Chinese Acad Sci South China Sea Inst Oceanol State Key Lab Trop Oceanog Guangzhou Peoples R China|Southern Marine Sci & Engn Guangdong Lab Guangzhou Peoples R China|Chinese Acad Sci Innovat Acad South China Sea Ecol & Environm Engn Guangzhou Peoples R China;

    Chinese Acad Sci South China Sea Inst Oceanol State Key Lab Trop Oceanog Guangzhou Peoples R China|Southern Marine Sci & Engn Guangdong Lab Guangzhou Peoples R China|Chinese Acad Sci Innovat Acad South China Sea Ecol & Environm Engn Guangzhou Peoples R China;

    Chinese Acad Sci South China Sea Inst Oceanol State Key Lab Trop Oceanog Guangzhou Peoples R China|Southern Marine Sci & Engn Guangdong Lab Guangzhou Peoples R China|Chinese Acad Sci Innovat Acad South China Sea Ecol & Environm Engn Guangzhou Peoples R China;

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