The results, published this week in the journal
There still remain major uncertainties about how the atmospheric circulation and the rainfall patterns over Southeast Asia and the Western Tropical Pacific respond to El Ni?o conditions, such as the current 2015 event. The new findings by Malte Stuecker and Fei-Fei Jin, from the Department of Atmospheric Sciences, and Axel Timmermann from the International Pacific Research Center at the University of Hawai'i, Mānoa demonstrate that the atmospheric reaction is much more predictable than previously assumed.
As a result of the developing and decaying El Ni?o conditions and the seasonal march of the sun across the equator, a series of near-annual atmosphere oscillations is generated with periods of about 24, 16, 10, and 8 months, each with its own characteristic pressure pattern. All of these contribute to the formation of an extended and very persistent high pressure system over the western tropical Pacific, which peaks in January and re-emerges in the boreal summer of the following La Ni?a year.
"Known as the Philippine Sea Anticyclone, this pattern plays a pivotal role in how the effects of El Ni?o are expressed in Southeast Asia," explains Stuecker, climate scientist and lead author of the study. "In the past, many researchers looked at seasonal averages of wind and rainfall and missed the details of this variability," he adds.
"Our new theory also explains the observed persistence of the Philippine Sea Anticyclone, even months after El Ni?o warming has subsided and well into the subsequent La Ni?a summer. The effect of El Ni?o in winter is qualitatively similar to the effect of La Ni?a in summer. These effects occur when the phases of Pacific warming and the annual solar cycle coincide," says co-author Fei-Fei Jin, climate researcher and Professor at the Department of Atmospheric Sciences.
"These near-annual monsoon oscillations have some resemblance to the different ringing tones of a bell. Finding a new structure in the chaos of otherwise random weather variability has been very exciting, because it may open the door to enhanced seasonal predictability," says co-author Axel Timmermann, Professor at the Oceanography Department and the International Pacific Research Center.
The scientists emphasize that this mechanism provides a fundamentally new way to understand variability in the atmosphere on a large range of timescales and can be applied to a number of different climate phenomena.
Story Source:
The above post is reprinted from
Journal Reference:
- Malte F. Stuecker, Fei-Fei Jin, Axel Timmermann.
El Ni?o?Southern Oscillation frequency cascade. Proceedings of the National Academy of Sciences, 2015; 201508622 DOI: 10.1073/pnas.1508622112