Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation

The transportable ground based microwave radiometer MIAWARA-C monitored the upper stratospheric and lower mesospheric (USLM) water vapor distribution over Sodankylä, Finland (67.4° N, 26.6° E) from January to June 2010. At the end of January, approximately 2 weeks after MIAWARA-C's start of ope...

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Published in:Atmospheric Chemistry and Physics
Other Authors: Straub, C. (author), Tschanz, B. (author), Hocke, K. (author), Kämpfer, N. (author), Smith, Anne (author)
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2012
Subjects:
Online Access:http://nldr.library.ucar.edu/repository/collections/OSGC-000-000-010-772
https://doi.org/10.5194/acp-12-5413-2012
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spelling ftncar:oai:drupal-site.org:articles_12004 2023-09-05T13:17:49+02:00 Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation Straub, C. (author) Tschanz, B. (author) Hocke, K. (author) Kämpfer, N. (author) Smith, Anne (author) 2012-06-22 application/pdf http://nldr.library.ucar.edu/repository/collections/OSGC-000-000-010-772 https://doi.org/10.5194/acp-12-5413-2012 en eng Copernicus Publications Atmospheric Chemistry and Physics http://nldr.library.ucar.edu/repository/collections/OSGC-000-000-010-772 doi:10.5194/acp-12-5413-2012 ark:/85065/d7sj1mb3 Copyright Author(s) 2012. This work is distributed under the Creative Commons Attribution 3.0 License. Text article 2012 ftncar https://doi.org/10.5194/acp-12-5413-2012 2023-08-14T18:40:28Z The transportable ground based microwave radiometer MIAWARA-C monitored the upper stratospheric and lower mesospheric (USLM) water vapor distribution over Sodankylä, Finland (67.4° N, 26.6° E) from January to June 2010. At the end of January, approximately 2 weeks after MIAWARA-C's start of operation in Finland, a stratospheric sudden warming (SSW) disturbed the circulation of the middle atmosphere. Shortly after the onset of the SSW water vapor rapidly increased at pressures between 1 and 0.01 hPa. Backward trajectory calculations show that this strong increase is due to the breakdown of the polar vortex and meridional advection of subtropical air to the Arctic USLM region. In addition, mesospheric upwelling in the course of the SSW led to an increase in observed water vapor between 0.1 and 0.03 hPa. After the SSW MIAWARA-C observed a decrease in mesospheric water vapor volume mixing ratio (VMR) due to the subsidence of H₂O poor air masses in the polar region. Backward trajectory analysis and the zonal mean water vapor distribution from the Microwave Limb Sounder on the Aura satellite (Aura/MLS) indicate the occurrence of two regimes of circulation from 50° N to the North Pole: (1) regime of enhanced meridional mixing throughout February and (2) regime of an eastward circulation in the USLM region reestablished between early March and the equinox. The polar descent rate determined from MIAWARA-C's 5.2 parts per million volume (ppmv) isopleth is 350 ± 40 m d⁻¹ in the pressure range 0.6 to 0.06 hPa between early February and early March. For the same time interval the descent rate in the same pressure range was determined using Transformed Eulerian Mean (TEM) wind fields simulated by means of the Whole Atmosphere Community Climate Model with Specified Dynamics (SD-WACCM). The average value of the SD-WACCM TEM vertical wind is 325 m d⁻¹ while the along trajectory vertical displacement is 335 m d⁻¹. The similar descent rates found indicate good agreement between the model and MIAWARA-C's measurements. Article in Journal/Newspaper Arctic North Pole Sodankylä OpenSky (NCAR/UCAR - National Center for Atmospheric Research/University Corporation for Atmospheric Research) Arctic North Pole Sodankylä ENVELOPE(26.600,26.600,67.417,67.417) Atmospheric Chemistry and Physics 12 12 5413 5427
institution Open Polar
collection OpenSky (NCAR/UCAR - National Center for Atmospheric Research/University Corporation for Atmospheric Research)
op_collection_id ftncar
language English
description The transportable ground based microwave radiometer MIAWARA-C monitored the upper stratospheric and lower mesospheric (USLM) water vapor distribution over Sodankylä, Finland (67.4° N, 26.6° E) from January to June 2010. At the end of January, approximately 2 weeks after MIAWARA-C's start of operation in Finland, a stratospheric sudden warming (SSW) disturbed the circulation of the middle atmosphere. Shortly after the onset of the SSW water vapor rapidly increased at pressures between 1 and 0.01 hPa. Backward trajectory calculations show that this strong increase is due to the breakdown of the polar vortex and meridional advection of subtropical air to the Arctic USLM region. In addition, mesospheric upwelling in the course of the SSW led to an increase in observed water vapor between 0.1 and 0.03 hPa. After the SSW MIAWARA-C observed a decrease in mesospheric water vapor volume mixing ratio (VMR) due to the subsidence of H₂O poor air masses in the polar region. Backward trajectory analysis and the zonal mean water vapor distribution from the Microwave Limb Sounder on the Aura satellite (Aura/MLS) indicate the occurrence of two regimes of circulation from 50° N to the North Pole: (1) regime of enhanced meridional mixing throughout February and (2) regime of an eastward circulation in the USLM region reestablished between early March and the equinox. The polar descent rate determined from MIAWARA-C's 5.2 parts per million volume (ppmv) isopleth is 350 ± 40 m d⁻¹ in the pressure range 0.6 to 0.06 hPa between early February and early March. For the same time interval the descent rate in the same pressure range was determined using Transformed Eulerian Mean (TEM) wind fields simulated by means of the Whole Atmosphere Community Climate Model with Specified Dynamics (SD-WACCM). The average value of the SD-WACCM TEM vertical wind is 325 m d⁻¹ while the along trajectory vertical displacement is 335 m d⁻¹. The similar descent rates found indicate good agreement between the model and MIAWARA-C's measurements.
author2 Straub, C. (author)
Tschanz, B. (author)
Hocke, K. (author)
Kämpfer, N. (author)
Smith, Anne (author)
format Article in Journal/Newspaper
title Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation
spellingShingle Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation
title_short Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation
title_full Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation
title_fullStr Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation
title_full_unstemmed Transport of mesospheric H₂O during and after the stratospheric sudden warming of January 2010: Observation and simulation
title_sort transport of mesospheric h₂o during and after the stratospheric sudden warming of january 2010: observation and simulation
publisher Copernicus Publications
publishDate 2012
url http://nldr.library.ucar.edu/repository/collections/OSGC-000-000-010-772
https://doi.org/10.5194/acp-12-5413-2012
long_lat ENVELOPE(26.600,26.600,67.417,67.417)
geographic Arctic
North Pole
Sodankylä
geographic_facet Arctic
North Pole
Sodankylä
genre Arctic
North Pole
Sodankylä
genre_facet Arctic
North Pole
Sodankylä
op_relation Atmospheric Chemistry and Physics
http://nldr.library.ucar.edu/repository/collections/OSGC-000-000-010-772
doi:10.5194/acp-12-5413-2012
ark:/85065/d7sj1mb3
op_rights Copyright Author(s) 2012. This work is distributed under the Creative Commons Attribution 3.0 License.
op_doi https://doi.org/10.5194/acp-12-5413-2012
container_title Atmospheric Chemistry and Physics
container_volume 12
container_issue 12
container_start_page 5413
op_container_end_page 5427
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