4.7 Article

Rossby Waves in Total Ozone over the Arctic in 2000-2021

Journal

REMOTE SENSING
Volume 14, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/rs14092192

Keywords

Rossby wave; quasi-stationary wave; stratosphere; Arctic; ozone

Funding

  1. College of Physics, International Center of Future Science, Jilin University, China
  2. Ministry of Education and Science of Ukraine [BN-06, 20BF051-02, 4293]
  3. Australian Antarctic Program
  4. National Antarctic Scientific Center of Ukraine
  5. National Aeronautics and Space Administration

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The purpose of this study is to investigate the Rossby wave parameters in total ozone over the Arctic from 2000 to 2021. The study focuses on the January-March period when stratospheric trace gases, including ozone, are strongly affected by planetary waves during sudden stratospheric warming events. The study analyzed ozone data at different latitudes and presented the zonal distribution and variations of total ozone column (TOC) using satellite observations. The study discussed the daily and interannual variations in TOC, amplitudes and phases of spectral wave components, as well as the trends in the amplitudes of the dominant quasi-stationary wave 1 (QSW1). The study found significant variations in TOC and discussed the processes associated with quasi-circumpolar migration and quasi-stationary oscillation of the wave-1 phase depending on the polar vortex strength in 2020 and 2021.
The purpose of this work is to study Rossby wave parameters in total ozone over the Arctic in 2000-2021. We consider the averages in the January-March period, when stratospheric trace gases (including ozone) in sudden stratospheric warming events are strongly disturbed by planetary waves. To characterize the wave parameters, we analyzed ozone data at the latitudes of 50 degrees N (the sub-vortex area), 60 degrees N (the polar vortex edge) and 70 degrees N (inner region of the polar vortex). Total ozone column (TOC) measurements over a 22-year time interval were used from the Total Ozone Mapping Spectrometer/Earth Probe and Ozone Mapping Instrument/Aura satellite observations. The TOC zonal distribution and variations in the Fourier spectral components with zonal wave numbers m = 1-5 are presented. The daily and interannual variations in TOC, amplitudes and phases of the spectral wave components, as well as linear trends in the amplitudes of the dominant quasi-stationary wave 1 (QSW1), are discussed. The positive TOC peaks inside the vortex in 2010 and 2018 alternate with negative ones in 2011 and 2020. The extremely low TOC at 70 degrees N in 2020 corresponds to severe depletion of stratospheric ozone over the Arctic in strong vortex conditions due to anomalously low planetary wave activity and a high positive phase of the Arctic Oscillation. Interannual TOC variations in the sub-vortex region at 50 degrees N are accompanied by a negative trend of -4.8 Dobson Units per decade in the QSW1 amplitude, statistically significant at 90% confidence level, while the trend is statistically insignificant in the vortex edge region and inside the vortex due to the increased variability in TOC and QSW1. The processes associated with quasi-circumpolar migration and quasi-stationary oscillation of the wave-1 phase depending on the polar vortex strength in 2020 and 2021 are discussed.

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