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Influence of Positive and Negative Indian Ocean Dipoles on ENSO via the Indonesian Throughflow: Results from Sensitivity Experiments 被引量:7

Influence of Positive and Negative Indian Ocean Dipoles on ENSO via the Indonesian Throughflow: Results from Sensitivity Experiments
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摘要 The role of the Indonesian Throughflow (ITF) in the influence of the Indian Ocean Dipole (IOD) on ENSO is investigated using version 2 of the Parallel Ocean Program (POP2) ocean general circulation model. We demonstrate the results through sensitivity experiments on both positive and negative IOD events from observations and coupled general circulation model simulations. By shutting down the atmospheric bridge while maintaining the tropical oceanic channel, the IOD forcing is shown to influence the ENSO event in the following year, and the role of the ITF is emphasized. During positive IOD events, negative sea surface height anomalies (SSHAs) occur in the eastern Indian Ocean, indicating the existence of upwelling. These upwelling anomalies pass through the Indonesian seas and enter the western tropical Pacific, resulting in cold anomalies there. These cold temperature anomalies further propagate to the eastern equatorial Pacific, and ultimately induce a La Nifia- like mode in the following year. In contrast, during negative IOD events, positive SSHAs are established in the eastern Indian Ocean, leading to downwelling anomalies that can also propagate into the subsurface of the western Pacific Ocean and travel further eastward. These downwelling anomalies induce negative ITF transport anomalies, and an E1 Nifio-like mode in the tropical eastern Pacific Ocean that persists into the following year. The effects of negative and positive IOD events on ENSO via the ITF are symmetric. Finally, we also estimate the contribution of IOD forcing in explaining the Pacific variability associated with ENSO via ITE The role of the Indonesian Throughflow (ITF) in the influence of the Indian Ocean Dipole (IOD) on ENSO is investigated using version 2 of the Parallel Ocean Program (POP2) ocean general circulation model. We demonstrate the results through sensitivity experiments on both positive and negative IOD events from observations and coupled general circulation model simulations. By shutting down the atmospheric bridge while maintaining the tropical oceanic channel, the IOD forcing is shown to influence the ENSO event in the following year, and the role of the ITF is emphasized. During positive IOD events, negative sea surface height anomalies (SSHAs) occur in the eastern Indian Ocean, indicating the existence of upwelling. These upwelling anomalies pass through the Indonesian seas and enter the western tropical Pacific, resulting in cold anomalies there. These cold temperature anomalies further propagate to the eastern equatorial Pacific, and ultimately induce a La Nifia- like mode in the following year. In contrast, during negative IOD events, positive SSHAs are established in the eastern Indian Ocean, leading to downwelling anomalies that can also propagate into the subsurface of the western Pacific Ocean and travel further eastward. These downwelling anomalies induce negative ITF transport anomalies, and an E1 Nifio-like mode in the tropical eastern Pacific Ocean that persists into the following year. The effects of negative and positive IOD events on ENSO via the ITF are symmetric. Finally, we also estimate the contribution of IOD forcing in explaining the Pacific variability associated with ENSO via ITE
出处 《Advances in Atmospheric Sciences》 SCIE CAS CSCD 2015年第6期783-793,共11页 大气科学进展(英文版)
基金 sponsored by the National Public Benefit (Meteorology) Research Foundation of China (Grant No. GYHY 201306018)
关键词 IOD Pacific Ocean ENSO Indonesian Throughflow IOD, Pacific Ocean, ENSO, Indonesian Throughflow
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  • 1Alexander, M. A., I. Blade, M. Newman, J. R. Lanzante, N. C. Lau, and J. D. Scott, 2002: The atmospheric bridge: The in- fluence of ENSO teleconnections on air-sea interaction over the global oceans. J. Climate, 15, 2205-2231.
  • 2Allan, R. J., and Coauthors, 2001: Is there an Indian Ocean dipole and is it independent of the E1 Nifio-Southem Oscillation? In- ternational CLIVAR Project Office, 18-22.
  • 3Annamalai, H., S. P. Xie, J. P. McCreary, and R. Murtugudde, 2005: Impact of Indian Ocean sea surface temperature on de- veloping E1 Nifio. J. Climate, 18, 302-319.
  • 4Baquero-Bemal, A., M. Latif, and S. Legutke, 2002: On Dipole- like variability of sea surface temperature in the tropical In- dian Ocean. J. Climate, 15, 1358-1368.
  • 5Behera, S. K., J. J. Luo, S. Masson, S. A. Rao, H. Sakuma, and T. Yamagata, 2006: A CGCM study on the interaction between IOD and ENSO. J. Climate, 19, 1688-1705.
  • 6Chen, D., M. A. Cane, A. Kaplan, S. E. Zebiak, and D. Huang, 2004: Predictability of E1 Nifio over the past 148 years. Na- ture, 428, 733-736.
  • 7Clarke, A. J., and S. Van Gorder, 2003: Improving E1 Nifio predic- tion using a space-time integration of Indo-Pacific winds and equatorial Pacific upper ocean heat content. Geophys. Res. Lett., 30, 1399, doi: 10.1029/2002GL016673.
  • 8Danabasoglu, G., and Coauthors, 2011: The CCSM4 ocean com- ponent. J. Climate, 25, 1361-1389.
  • 9Deser, C., and Coauthors, 2012: ENSO and Pacific decadal vari- ability in the community climate system model version 4. J. Climate, 25, 2622-2651.
  • 10Diaz, H. E, M. P. Hoerling, and J. K. Eischeid, 2001: ENSO variability, teleconnections and climate change. International Journal of Climatology, 21, 1845-1862.

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