Global Middle-Atmosphere Response to Winter Stratospheric Variability in SABER and MLS Mean Temperature

A. K. Smith aAtmospheric Chemistry Observations and Modeling, National Center for Atmospheric Research, Boulder, Colorado

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N. M. Pedatella bHigh Altitude Observatory, National Center for Atmospheric Research, Boulder, Colorado

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C. G. Bardeen aAtmospheric Chemistry Observations and Modeling, National Center for Atmospheric Research, Boulder, Colorado

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Abstract

Satellite observations of middle-atmosphere temperature are used to investigate the short-term global response to planetary wave activity in the winter stratosphere. The focus is on the relation between variations in the winter and summer hemispheres. The analysis uses observations from Thermosphere–Ionosphere–Mesosphere Energetics and Dynamics (TIMED) Sounding of the Atmosphere using Broadband Emission Radiometry (SABER) for 2002–21 and Aura Microwave Limb Sounder (MLS) for 2004–21, and reanalysis temperatures and winds from MERRA-2 for 2002–21. We calculate temporal correlations of the Eliassen–Palm flux divergence in the winter stratosphere with global temperature. Results show a robust perturbation extending to midlatitudes of the Southern Hemisphere (SH) stratosphere during Northern Hemisphere (NH) winter. An increase in wave forcing is followed by a decrease in temperatures over the depth of the stratosphere in the SH, peaking at a lag of 3 days. Summer mesospheric temperature perturbations of the opposite sign are seen in many winters. Comparable signals in the NH summer middle-atmosphere are present during some SH winters but are weaker and less consistent than those in the SH during NH winter. A diagnostic evaluation of the patterns of correlation, the mesospheric zonal winds, and the stability criteria suggests that the temperature perturbations in the midlatitude summer mesosphere are more closely associated with the summer stratosphere directly below than with the wave activity in the winter stratosphere. This suggests that the interhemispheric coupling in the stratosphere is driving or contributing to the coupling between the winter stratosphere and the summer mesosphere that has been reported in several investigations.

Significance Statement

There are many instances in which one part of the atmosphere is found to regularly respond to perturbations occurring in a distant region. In this study, we use observations to investigate one such pattern: temperature changes at high altitude (60–100 km) in the summer that follow dynamical changes near the winter pole at 40–60 km. Such analysis is useful to understand which physical processes contribute to the global connectivity and variability of the atmosphere.

© 2022 American Meteorological Society. For information regarding reuse of this content and general copyright information, consult the AMS Copyright Policy (www.ametsoc.org/PUBSReuseLicenses).

Corresponding author: Anne K. Smith, aksmith@ucar.edu

Abstract

Satellite observations of middle-atmosphere temperature are used to investigate the short-term global response to planetary wave activity in the winter stratosphere. The focus is on the relation between variations in the winter and summer hemispheres. The analysis uses observations from Thermosphere–Ionosphere–Mesosphere Energetics and Dynamics (TIMED) Sounding of the Atmosphere using Broadband Emission Radiometry (SABER) for 2002–21 and Aura Microwave Limb Sounder (MLS) for 2004–21, and reanalysis temperatures and winds from MERRA-2 for 2002–21. We calculate temporal correlations of the Eliassen–Palm flux divergence in the winter stratosphere with global temperature. Results show a robust perturbation extending to midlatitudes of the Southern Hemisphere (SH) stratosphere during Northern Hemisphere (NH) winter. An increase in wave forcing is followed by a decrease in temperatures over the depth of the stratosphere in the SH, peaking at a lag of 3 days. Summer mesospheric temperature perturbations of the opposite sign are seen in many winters. Comparable signals in the NH summer middle-atmosphere are present during some SH winters but are weaker and less consistent than those in the SH during NH winter. A diagnostic evaluation of the patterns of correlation, the mesospheric zonal winds, and the stability criteria suggests that the temperature perturbations in the midlatitude summer mesosphere are more closely associated with the summer stratosphere directly below than with the wave activity in the winter stratosphere. This suggests that the interhemispheric coupling in the stratosphere is driving or contributing to the coupling between the winter stratosphere and the summer mesosphere that has been reported in several investigations.

Significance Statement

There are many instances in which one part of the atmosphere is found to regularly respond to perturbations occurring in a distant region. In this study, we use observations to investigate one such pattern: temperature changes at high altitude (60–100 km) in the summer that follow dynamical changes near the winter pole at 40–60 km. Such analysis is useful to understand which physical processes contribute to the global connectivity and variability of the atmosphere.

© 2022 American Meteorological Society. For information regarding reuse of this content and general copyright information, consult the AMS Copyright Policy (www.ametsoc.org/PUBSReuseLicenses).

Corresponding author: Anne K. Smith, aksmith@ucar.edu
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  • Baldwin, M. P., and Coauthors, 2021: Sudden stratospheric warmings. Rev. Geophys., 59, e2020RG000708, https://doi.org/10.1029/2020RG000708.

    • Crossref
    • Export Citation
  • Becker, E., and D. C. Fritts, 2006: Enhanced gravity-wave activity and interhemispheric coupling during the MaCWAVE/MIDAS northern summer program 2002. Ann. Geophys., 24, 11751188, https://doi.org/10.5194/angeo-24-1175-2006.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Butler, A. H., J. P. Sjoberg, D. J. Seidel, and K. H. Rosenlof, 2017: A sudden stratospheric warming compendium. Earth Syst. Sci. Data, 9, 6376, https://doi.org/10.5194/essd-9-63-2017.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Dawkins, E. C. M., and Coauthors, 2018: Validation of SABER v2.0 operational temperature data with ground-based lidars in the mesosphere-lower thermosphere region (75–105 km). J. Geophys. Res. Atmos., 123, 99169934, https://doi.org/10.1029/2018JD028742.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Espy, P. J., S. Ochoa Fernández, P. Forkman, D. Murtagh, and J. Stegman, 2011: The role of the QBO in the interhemispheric coupling of summer mesospheric temperatures. Atmos. Chem. Phys., 11, 495502, https://doi.org/10.5194/acp-11-495-2011.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • France, J. A., and Coauthors, 2018: Local and remote planetary wave effects on polar mesospheric clouds in the Northern Hemisphere in 2014. J. Geophys. Res. Atmos., 123, 51495162, https://doi.org/10.1029/2017JD028224.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Garcia, R. R., 1987: On the mean meridional circulation of the middle atmosphere. J. Atmos. Sci., 44, 35993609, https://doi.org/10.1175/1520-0469(1987)044<3599:OTMMCO>2.0.CO;2.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Gelaro, R., and Coauthors, 2017: The Modern-Era Retrospective Analysis for Research and Applications, version 2 (MERRA-2). J. Climate, 30, 54195454, https://doi.org/10.1175/JCLI-D-16-0758.1.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • GMAO, 2015: MERRA-2 inst3_3d_asm_Np: 3D, 3-hourly, instantaneous, pressure-level, assimilation, assimilated meteorological fields, version 5.12.4. GES DISC, accessed 13 April 2021, https://doi.org/10.5067/QBZ6MG944HW0.

    • Crossref
    • Export Citation
  • Karlsson, B., H. Körnich, and J. Gumbel, 2007: Evidence for interhemispheric stratosphere-mesosphere coupling derived from noctilucent cloud properties. Geophys. Res. Lett., 34, L16806, https://doi.org/10.1029/2007GL030282.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Karlsson, B., C. E. Randall, S. Benze, M. Mills, V. L. Harvey, S. M. Bailey, and J. M. Russell III, 2009a: Intra-seasonal variability of polar mesospheric clouds due to inter-hemispheric coupling. Geophys. Res. Lett., 36, L20802, https://doi.org/10.1029/2009GL040348.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Karlsson, B., C. McLandress, and T. G. Shepherd, 2009b: Inter-hemispheric mesospheric coupling in a comprehensive middle atmosphere model. J. Atmos. Sol.-Terr. Phys., 71, 518530, https://doi.org/10.1016/j.jastp.2008.08.006.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Körnich, H., and E. Becker, 2010: A simple model for the interhemispheric coupling of the middle atmosphere. Adv. Space Res., 45, 661668, https://doi.org/10.1016/j.asr.2009.11.001.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Lieberman, R. S., J. France, D. A. Ortland, and S. D. Eckermann, 2021: The role of inertial instability in cross-hemispheric coupling. J. Atmos. Sci., 78, 11131127, https://doi.org/10.1175/JAS-D-20-0119.1.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Livesey, N. J., and Coauthors, 2020: Earth Observing System (EOS), Aura Microwave Limb Sounder (MLS) version 5.0x level 2 and 3 data quality and description document. JPL Tech. Rep. JPL D-105336, Revision A, 168 pp.

    • Crossref
    • Export Citation
  • Randel, W. J., 1993: Global variations of zonal mean ozone during stratospheric warming events. J. Atmos. Sci., 50, 33083321, https://doi.org/10.1175/1520-0469(1993)050<3308:GVOZMO>2.0.CO;2.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Remsberg, E. E., and Coauthors, 2008: Assessment of the quality of the retrieved temperature versus pressure profiles in the middle atmosphere from TIMED/SABER. J. Geophys. Res., 113, D17101, https://doi.org/10.1029/2008JD010013.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Siskind, D. E., and J. P. McCormack, 2014: Summer mesospheric warmings and the quasi 2 day wave. Geophys. Res. Lett., 41, 717722, https://doi.org/10.1002/2013GL058875.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Smith, A. K., R. R. Garcia, A. C. Moss, and N. J. Mitchell, 2017: The semiannual oscillation of the tropical zonal wind in the middle atmosphere derived from satellite geopotential height retrievals. J. Atmos. Sci., 74, 24132425, https://doi.org/10.1175/JAS-D-17-0067.1.

    • Search Google Scholar
    • Export Citation
  • Smith, A. K., N. M. Pedatella, and Z. K. Mullen, 2020: Interhemispheric coupling mechanisms in the middle atmosphere of WACCM6. J. Atmos. Sci., 77, 11011118, https://doi.org/10.1175/JAS-D-19-0253.1.

    • Search Google Scholar
    • Export Citation
  • Tan, B., X. Chu, H.-L. Liu, C. Yamashita, and J. M. Russell III, 2012: Zonal-mean global teleconnection from 15 to 110 km derived from SABER and WACCM. J. Geophys. Res., 117, D10106, https://doi.org/10.1029/2011JD016750.

    • Search Google Scholar
    • Export Citation
  • Tung, K. K., and J. S. Kinnersley, 2001: Mechanisms by which extratropical wave forcing in the winter stratosphere induces upwelling in the summer hemisphere. J. Geophys. Res., 106, 22 78122 791, https://doi.org/10.1029/2001JD900228.

    • Search Google Scholar
    • Export Citation
  • Xu, X., A. H. Manson, C. E. Meek, T. Chshyolkova, J. R. Drummond, C. M. Hall, D. M. Riggin, and R. E. Hibbins, 2009: Vertical and interhemispheric links in the stratosphere-mesosphere as revealed by the day-to-day variability of Aura-MLS temperature data. Ann. Geophys., 27, 33873409, https://doi.org/10.5194/angeo-27-3387-2009.

    • Search Google Scholar
    • Export Citation
  • Yasui, R., K. Sato, and Y. Miyoshi, 2021: Roles of Rossby waves, Rossby–gravity waves, and gravity waves generated in the middle atmosphere for interhemispheric coupling. J. Atmos. Sci., 78, 38673888, https://doi.org/10.1175/JAS-D-21-0045.1.

    • Search Google Scholar
    • Export Citation
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