A sub-seasonal oscillation of sea surface temperature in the Southern Indian Ocean during DJF and its excitation mechanism

被引:0
作者
Yucheng Zi
Ziniu Xiao
Gaopeng Lu
Jingjing Xu
机构
[1] University of Science and Technology of China,School of Earth and Space Sciences
[2] Chinese Academy of Sciences,State Key Laboratory of Numerical Modeling for Atmospheric Science and Geophysical Fluid Dynamics, Institute of Atmospheric Physics
[3] Chinese Academy of Sciences,International Center for Climate and Environment Sciences (ICCES), Institute of Atmospheric Physics
来源
Climate Dynamics | 2023年 / 60卷
关键词
Southern Indian Ocean; Sub-seasonal scale; The Mascarene high; Latent heat flux; Zonal wave train; Precipitation;
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摘要
Southern Indian Ocean dipole (SIOD) is a dipole SST anomaly in the Southern Indian Ocean that plays an important role in tropical climate variability. However, previous studies focused on the interannual and interdecadal scales. In this paper, the characteristics on sub-seasonal scale of SIOD are revealed from December to February (DJF) based on the ERA-Interim reanalysis dataset, and the excitation mechanisms of SIOD are also discussed. The results show that the two dominant modes of SST in the Southern Indian Ocean are the spatial distribution of Southwest-Northeast direction dipole (SIOD) and triple (SIOT) respectively, which has obvious period of quasi 50–60 days. Moreover, the intensity and zonal oscillation of the Mascarene high are conducive to the formation of SIOD (SIOT). The air–sea interaction during the formation process is composed of three stages. In the first stage the atmospheric forces the ocean to result in the Mascarene high westward (eastward) and enhances the abnormal anticyclone in the Southern Indian Ocean. There are abnormal northerly (southerly) flows on the west (east) sides of the abnormal anticyclone respectively, which weakens (enhances) the southeast trade wind in the climatology. The surface latent heat flux release decreases (increases) and SST is warmed (cooled). During the following stage, the ocean feedback the atmosphere. The warm SST continues to increase, resulting in low-level convective enhancement, which weakens the abnormal anticyclone. The third stage is again the atmosphere forcing the ocean. The abnormal anticyclone gradually turns into an abnormal cyclone and the meridional wind direction is reversed. The release of the latent heat flux increases (decreases) significantly which leads to the cooling (warming) of SST on the west (east) sides of an abnormal cyclone. In addition, the formation and extinction of SIOT are easier affected by the southern annular mode (SAM) than SIOD. The abnormal zonal wave train with wavenumber 4 (3) propagates the Southern Indian Ocean by the westerly jet waveguide and results in an SST anomaly of SIOD (SIOT), accompanied by an obvious sub-seasonal meridional variation of the precipitation in Southern Africa.
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页码:3927 / 3945
页数:18
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  • [1] Ambrizzi T(1995)Rossby wave propagation and teleconnection patterns in the austral Winter J Atmos Sci 52 3661-3672
  • [2] Hoskins BJ(2001)Subtropical SST dipole events in the southern Indian Ocean Geophys Res Lett 28 327-330
  • [3] Hsu HH(2011)The ERA-Interim reanalysis: configuration and performance of the data assimilation system Q J R Meteorol Soc 137 553-597
  • [4] Behera SK(2005)Ocean model diagnosis of interannual coevolving SST variability in the South Indian and South Atlantic Oceans J Clim 18 2864-2882
  • [5] Yamagata T(1989)Intraseasonal and interannual variability of rainfall over India J Clim 13 4366-4377
  • [6] Dee DP(1996)Further studies on evaporation-wind feedback J Trop Meteorol 000 193-199
  • [7] Uppala SM(2007)Half-century seasonal relationships between the Southern Annular Mode and Antarctic temperatures Int J Climatol 27 373-383
  • [8] Simmons AJ(2007)Teleconnection patterns and rossby wave propagation associated to generalized frosts over southern south America Clim Dyn 29 633-645
  • [9] Hermes JC(1987)Evaporation-wind feedback and low-frequency variability in the tropical atmosphere J Atmos Sci 44 2341-2348
  • [10] Reason CJC(2008)Southern Indian Ocean SST variability and its relationship with Indian Summer monsoon Atmos Ocean 46 361-376