Impact of indo-pacific feedback interactions on ENSO dynamics diagnosed using ensemble climate simulations

70Citations
Citations of this article
62Readers
Mendeley users who have this article in their library.
Get full text

Abstract

The impact of Indo-Pacific climate feedback on the dynamics of El Niñ o-Southern Oscillation (ENSO) is investigated using an ensemble set of Indian Ocean decoupling experiments (DCPL), utilizing a millennial integration of a coupled climate model. It is found that eliminating air-sea interactions over the Indian Oceanresults in various degrees of ENSO amplification across DCPL simulations, with a shift in the underlying dynamics toward a more prominent thermocline mode. The DCPLexperiments reveal that the net effect of the Indian Ocean in the control runs (CTRL) is a damping of ENSO. The extent of this damping appears to be negatively correlated to the coherence between ENSO and the Indian Ocean dipole (IOD). This type of relationship can arise from the long-lasting ENSO events that the model simulates, such that developing ENSO often coincides with Indian Ocean basin-wide mode (IOBM) anomalies during non-IOD years. As demonstrated via AGCM experiments, the IOBM enhances western Pacific wind anomalies that counteract the ENSO-enhancing winds farther east. In the recharge oscillator framework, this weakens the equatorial Pacific air-sea coupling that governs the ENSO thermocline feedback. Relative to the IOBM, the IOD is more conducive for ENSO growth. The net damping by the Indian Ocean in CTRL is thus dominated by the IOBM effect which is weaker with stronger ENSO-IOD coherence. The stronger ENSO thermocline mode in DCPL is consistent with the absenceof any IOBM anomalies. This study supports the notion that the Indian Ocean should be viewed as an integral part of ENSO dynamics. © 2012 American Meteorological Society.

Cite

CITATION STYLE

APA

Santoso, A., England, M. H., & Cai, W. (2012). Impact of indo-pacific feedback interactions on ENSO dynamics diagnosed using ensemble climate simulations. Journal of Climate, 25(21), 7743–7763. https://doi.org/10.1175/JCLI-D-11-00287.1

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free