Based on 26 years of satellite altimetry, this study reveals the presence of a persistent east-west pattern in the sea level of the Red Sea, which is visible throughout the years when considering the east-west difference in sea level. This eastern-western (EW) difference is positive during winter when a higher sea level is observed at the eastern coast of the Red Sea and the opposite occurs during summer. May and October are transition months that show a mixed pattern in the sea level difference. The EW difference in the southern Red Sea has a slightly higher range compared to that of the northern region during summer, by an average of 0.2 cm. Wavelet analysis shows a significant annual cycle along with other signals of lower magnitude for both the northern and southern Red Sea. Removing the annual cycle reveals two energy peaks with periodicities of <12 months and 3-7 years, representing the intraseasonal and El Nino-Southern Oscillation (ENSO) signals, respectively. Empirical Orthogonal Function (EOF) analysis shows that EOF1 corresponds to 98% of total variability, EOF2 to 1.3%, and EOF3 to 0.4%. The remote response of ENSO is evident in the variability in the atmospheric bridge, while that of the Indian Ocean Dipole (IOD) and North Atlantic Oscillation (NAO) is weak. Three physical mechanisms are responsible for the occurrence of this EW difference phenomenon, namely wind, buoyancy, and the polarity of eddies.
CITATION STYLE
Abdulla, C. P., & Al-Subhi, A. M. (2020). Sea level variability in the Red sea: A persistent east-west pattern. Remote Sensing, 12(13). https://doi.org/10.3390/rs12132090
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