Roles of Dynamic and Thermodynamic Processes in Regulating the Decay Paces of El Niño Events

Author:

Lee Chung-Wei1ORCID,Sui Chung-Hsiung1ORCID,Li Tim23

Affiliation:

1. a Department of Atmospheric Sciences, National Taiwan University, Taipei, Taiwan

2. b International Pacific Research Center and Department of Atmospheric Sciences, School of Ocean and Earth Science and Technology, University of Hawai‘i at Mānoa, Honolulu, Hawaii

3. c Key Laboratory of Meteorological Disaster, Ministry of Education (KLME), Nanjing University of Information Science and Technology, Nanjing, China

Abstract

Abstract Most El Niño events decay after a peak in boreal winter, but some persist and strengthen again in the following year. Several mechanisms for regulating its decay pace have been proposed; however, their relative contributions have not been thoroughly examined yet. By analyzing the fast-decaying and persistent types of the events in a 1200-yr coupled simulation, we quantify the key dynamic and thermodynamic processes in the decaying spring that are critical to determining the decay pace of El Niño. The zonal advection due to upwelling Kelvin wave accounts for twice as much the cooling difference as evaporation or meridional advection does. The upwelling Kelvin wave is much stronger in the fast-decaying events than the others, and its strength is equally attributed to the reflected equatorial Rossby wave and the equatorial easterly wind forcing over the western Pacific in the preceding 2–3 months. Relative to the fast-decaying events, the evaporative cooling is weaker but the meridional warm advection is stronger in the persistent events. The former is due to more meridionally asymmetric wind and sea surface temperature anomalies (SSTA) signaling positive Pacific meridional mode. The latter results from the advection of equatorial warm SSTA by climatological divergent flow, and the warmer SSTA persists from the mature stage subject to weaker cloud-radiative cooling in response to the central-Pacific-type SSTA distribution in the persistent events relative to the fast-decaying events. Our result consolidates the existing knowledge and provides a more comprehensive and physical pathway for the causality of El Niño’s diverse duration.

Funder

Ministry of Science and Technology, Taiwan

National Natural Science Foundation of China

National Oceanic and Atmospheric Administration

National Science Foundation

Publisher

American Meteorological Society

Subject

Atmospheric Science

Reference69 articles.

1. The impact of extratropical atmospheric variability on ENSO: Testing the seasonal footprinting mechanism using coupled model experiments;Alexander, M. A.,2010

2. Triggering of El Niño onset through trade wind-induced charging of the equatorial Pacific;Anderson, B. T.,2013

3. Interannual variability in a tropical atmosphere–ocean model: Influence of the basic state, ocean geometry and nonlinearity;Battisti, D. S.,1989

4. Atmospheric teleconnections from the equatorial Pacific;Bjerknes, J.,1969

5. Propagation and reflection of long equatorial waves in the Pacific Ocean during the 1992–1993 El Niño;Boulanger, J.-P.,1995

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