SA006-11
The role of traveling planetary waves in ionosphere-atmosphere coupling during sudden stratospheric warmings

Tuesday, 8 December 2020: 07:52
Virtual
Yosuke Yamazaki1, Yasunobu Miyoshi2, Vivien Matthias3, Claudia Stolle1, Tarique Adnan Siddiqui4, Guram Kervalishvili1, Jan Lastovicka5, Michal Kozubek5, William E Ward6, David Russel Themens7, Samuel Kristoffersen8 and Patrick Alken9, (1)Helmholtz Centre Potsdam GFZ German Research Centre for Geosciences, Potsdam, Germany, (2)Kyushu University, Fukuoka, Japan, (3)DLR German Aerospace Center, Neustrelitz, Germany, (4)Leibniz Institute of Atmospheric Physics, Kühlungsborn, Germany, (5)Institute of Atmospheric Physics CAS, Prague, Czech Republic, (6)University of New Brunswick, Fredericton, NB, Canada, (7)University of Birmingham, Birmingham, B15, United Kingdom, (8)University of New Brunswick, Fredericton, Canada, (9)National Centers for Environmental Information NOAA, Boulder, United States
Abstract:
This study examines the role of traveling planetary waves in producing day-to-day variability of the ionosphere. Traveling planetary waves in the middle atmosphere, especially those having periods around 6, 10, 16 days, are generally regarded as the manifestation of atmospheric normal modes. A sudden stratospheric warming (SSW) is sometimes accompanied by enhanced traveling planetary waves, which can be understood in terms of the dependence of normal modes on the zonal mean state of the atmosphere. The September 2019 Antarctic SSW is one example. Following the SSW, a large quasi-6-day wave (Q6DW) is observed in the mesosphere and lower thermosphere. During the same time, Swarm satellites in near-polar orbits observe westward-propagating 6-day perturbations with zonal wavenumber 1 in ionospheric parameters such as the electron density and equatorial electrojet intensity. The whole atmosphere model GAIA is able to reproduce these ionospheric variations under constant geomagnetic and solar activity conditions. Using GAIA, it is demonstrated that tides modulated by the Q6DW are responsible for the 6-day ionospheric variations during the September 2019 SSW. Planetary wave modulations of tides and their ionospheric effects are also discussed for SSWs in other seasons.