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Contrasting Eastern-Pacific and Central-Pacific Types of ENSO

Journal of Climate · 2008 · Vol. 22(3) · pp. 615–632
Hsun‐Ying KaoJin‐Yi Yu

Abstract

Abstract Surface observations and subsurface ocean assimilation datasets are examined to contrast two distinct types of El Niño–Southern Oscillation (ENSO) in the tropical Pacific: an eastern-Pacific (EP) type and a central-Pacific (CP) type. An analysis method combining empirical orthogonal function (EOF) analysis and linear regression is used to separate these two types. Correlation and composite analyses based on the principal components of the EOF were performed to examine the structure, evolution, and teleconnection of these two ENSO types. The EP type of ENSO is found to have its SST anomaly center located in the eastern equatorial Pacific attached to the coast of South America. This type of ENSO is associated with basinwide thermocline and surface wind variations and shows a strong teleconnection with the tropical Indian Ocean. In contrast, the CP type of ENSO has most of its surface wind, SST, and subsurface anomalies confined in the central Pacific and tends to onset, develop, and decay in situ. This type of ENSO appears less related to the thermocline variations and may be influenced more by atmospheric forcing. It has a stronger teleconnection with the southern Indian Ocean. Phase-reversal signatures can be identified in the anomaly evolutions of the EP-ENSO but not for the CP-ENSO. This implies that the CP-ENSO may occur more as events or epochs than as a cycle. The EP-ENSO has experienced a stronger interdecadal change with the dominant period of its SST anomalies shifted from 2 to 4 yr near 1976/77, while the dominant period for the CP-ENSO stayed near the 2-yr band. The different onset times of these two types of ENSO imply that the difference between the EP and CP types of ENSO could be caused by the timing of the mechanisms that trigger the ENSO events.

Climate variability and modelsOceanographic and Atmospheric ProcessesGeology and Paleoclimatology ResearchThermoclineTeleconnectionClimatologyEmpirical orthogonal functionsAnomaly (physics)Pacific decadal oscillationEl Niño Southern OscillationSea surface temperatureGeologyMultivariate ENSO index

Funding

  • National Science Foundation
  • National Aeronautics and Space Administration
  • University of California, Irvine
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References
Hierarchical Grouping to Optimize an Objective Function
Journal of the American Statistical Association · 1963 · 18,957 citations
Detection of a 40–50 Day Oscillation in the Zonal Wind in the Tropical Pacific
Journal of the Atmospheric Sciences · 1971 · 3,280 citations
Indices of El Niño Evolution
Journal of Climate · 2001 · 963 citations
A Delayed Action Oscillator for ENSO
Journal of the Atmospheric Sciences · 1988 · 951 citations
El Niño Modoki and its possible teleconnection
Journal of Geophysical Research Atmospheres · 2007 · 2,641 citations
A Pacific Interdecadal Climate Oscillation with Impacts on Salmon Production
Bulletin of the American Meteorological Society · 1997 · 7,111 citations
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