Title :
Detection of the Madden–Julian Oscillation in the Indian Ocean From Satellite Altimetry
Author :
Grunseich, G. ; Subrahmanyam, B.
Author_Institution :
Dept. of Earth & Ocean Sci., Univ. of South Carolina, Columbia, SC, USA
Abstract :
The role of air-sea interaction on Madden-Julian oscillation (MJO) propagations across the tropical Indian Ocean is analyzed using integrated multimission satellite measurements of sea surface height and outgoing longwave radiation (OLR). MJO-related activity is observed in both parameters in the eastern equatorial Indian Ocean indicating a unique interaction in this region. In the eastern Indian Ocean, atmospheric conditions appear to aid in the creation of equatorial Rossby waves, while in the central and western Indian Ocean, different phases of oceanic Rossby wave propagations seem to have a strong influence on atmospheric conditions associated with the MJO. The downwelling phase of equatorial Rossby waves corresponds to a strengthening of OLR anomalies in extent and magnitude across the equatorial Indian Ocean, while the upwelling phase appears to weaken atmospheric MJO activity. This study improves climate research by identifying the MJO signal in altimetry data.
Keywords :
atmospheric radiation; atmospheric waves; height measurement; oceanographic regions; remote sensing; MJO propagation; MJO signal; MJO-related activity; Madden-Julian Oscillation detection; OLR anomaly strengthening; air-sea interaction; altimetry data; atmospheric MJO activity; atmospheric condition; downwelling phase; eastern equatorial Indian Ocean; equatorial Rossby wave; integrated multimission satellite measurement; oceanic Rossby wave propagation; outgoing longwave radiation; satellite altimetry; sea surface height; tropical Indian Ocean; upwelling phase; Atmospheric measurements; Atmospheric waves; Kelvin; Ocean waves; Oscillators; Sea surface; Altimetry; Indian Ocean; Madden–Julian oscillation (MJO); sea surface height (SSH);
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
DOI :
10.1109/LGRS.2012.2208261