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Influence of the El Niño Southern Oscillation on the middle and upper atmosphere
Author(s) -
Pedatella N. M.,
Liu H.L.
Publication year - 2013
Publication title -
journal of geophysical research: space physics
Language(s) - English
Resource type - Journals
eISSN - 2169-9402
pISSN - 2169-9380
DOI - 10.1002/jgra.50286
Subject(s) - thermosphere , atmosphere (unit) , forcing (mathematics) , troposphere , climatology , atmospheric sciences , atmospheric tide , longitude , geology , latitude , kelvin wave , ionosphere , environmental science , geophysics , meteorology , geography , geodesy
Based on Whole Atmosphere Community Climate Model (WACCM) simulations, Pedatella and Liu (2012) recently demonstrated that significant interannual variability occurs in migrating and nonmigrating tides in the mesosphere and lower thermosphere (MLT) due to the El Niño Southern Oscillation (ENSO). The role of changes in tropospheric forcing, changes in the zonal mean atmosphere, and planetary wave‐tide interactions on generating the tidal variability in the MLT are investigated in the present study. The ENSO‐driven variability in the migrating diurnal tide ( DW 1) is found to be primarily due to changes in the tropospheric forcing of the DW 1. Changes in tropospheric forcing are also the source of the changes in the eastward propagating nonmigrating diurnal tide with zonal wave number 3 ( DE 3). However, changes in the zonal mean atmosphere also contribute to interannual variability of the DE 3 due to the ENSO. Variability in the eastward propagating nonmigrating diurnal tide with zonal wave number 2 ( DE 2) is largely due to changes in the background atmosphere, with a smaller additional contribution due to changes in tropospheric forcing. Variability in the westward propagating semidiurnal tide with zonal wave number 4 ( SW 4) is believed to be due to changes in planetary waves during the ENSO which will enhance generation of the SW 4 through the nonlinear interaction of the migrating semidiurnal tide and stationary planetary waves with zonal wave number 2. The influence of the interannual tidal variability on the longitude structure of the low‐latitude ionosphere is also investigated in the present study. Comparison of El Niño and La Niña time periods reveals that the ENSO introduces changes of ~2–4 ms −1 in the daytime vertical drift velocity at certain longitudes. Simulation results further illustrate that the variability in the vertical drift velocity drives interannual variability in the low‐latitude daytime F region maximum electron density (NmF2). The results demonstrate that the ENSO introduces variability of ~10–30% in the MLT and ~10–15% in the ionosphere. The ENSO should therefore be considered as a potentially significant source of variability in the Earth's upper atmosphere.