A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008

A-train Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP) and Microwave Limb Sounder (MLS) observations are used to investigate the development of polar stratospheric clouds (PSCs) and the gas-phase nitric acid distribution in the early 2008 Antarctic winter. Observational evidence of gravit...

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Published in:Atmospheric Chemistry and Physics
Main Authors: Lambert, A., Santee, M. L., Wu, D. L., Chae, J. H.
Format: Article in Journal/Newspaper
Language:English
Published: Copernicus Publications 2012
Subjects:
Online Access:https://doi.org/10.5194/acp-12-2899-2012
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institution Open Polar
collection Niedersächsisches Online-Archiv NOA
op_collection_id ftnonlinearchiv
language English
topic article
Verlagsveröffentlichung
spellingShingle article
Verlagsveröffentlichung
Lambert, A.
Santee, M. L.
Wu, D. L.
Chae, J. H.
A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008
topic_facet article
Verlagsveröffentlichung
description A-train Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP) and Microwave Limb Sounder (MLS) observations are used to investigate the development of polar stratospheric clouds (PSCs) and the gas-phase nitric acid distribution in the early 2008 Antarctic winter. Observational evidence of gravity-wave activity is provided by Atmospheric Infrared Sounder (AIRS) radiances and infrared spectroscopic detection of nitric acid trihydrate (NAT) in PSCs is obtained from the Michelson Interferometer for Passive Atmospheric Sounding (MIPAS). Goddard Earth Observing System Data Assimilation System (GEOS-5 DAS) analyses are used to derive Lagrangian trajectories and to determine temperature-time histories of air parcels. We use CALIOP backscatter and depolarization measurements to classify PSCs and the MLS measurements to determine the corresponding gas-phase HNO3 as a function of temperature. For liquid PSCs the uptake of HNO3 follows the theoretical equilibrium curve for supercooled ternary solutions (STS), but at temperatures about 1 K lower as determined from GEOS-5. In the presence of solid phase PSCs, above the ice frost-point, the HNO3 depletion occurs over a wider range of temperatures (+2 to −7 K) distributed about the NAT equilibrium curve. Rapid gas-phase HNO3 depletion is first seen by MLS from from 23–25 May 2008, consisting of a decrease in the volume mixing ratio from 14 ppbv (parts per billion by volume) to 7 ppbv on the 46–32 hPa (hectopascal) pressure levels and accompanied by a 2–3 ppbv increase by renitrification at the 68 hPa pressure level. The observed region of depleted HNO3 is substantially smaller than the region bounded by the NAT existence temperature threshold. Temperature-time histories of air parcels demonstrate that the depletion is more clearly correlated with prior exposure to temperatures a few kelvin above the frost-point. From the combined data we infer the presence of large-size NAT particles with effective radii >5–7 μm and low NAT number densities <1 × 10−3 cm−3. This denitrification event is observed close to the pole in the Antarctic vortex before synoptic temperatures first fall below the ice frost point and before the widespread occurrence of large-scale NAT PSCs. An episode of mountain wave activity detected by AIRS on 28 May 2008 led to wave-ice formation in the rapid cooling phases over the Antarctic Peninsula and Ellsworth Mountains, seeding an outbreak of NAT PSCs that were detected by CALIOP and MIPAS. The NAT clouds formed at altitudes of 18–26 km in a polar freezing belt and appear to be composed of relatively small particles with estimated effective radii of around 1 μm and high NAT number densities >0.2 cm−3. This NAT outbreak is similar to an event previously reported from MIPAS observations in mid-June 2003.
format Article in Journal/Newspaper
author Lambert, A.
Santee, M. L.
Wu, D. L.
Chae, J. H.
author_facet Lambert, A.
Santee, M. L.
Wu, D. L.
Chae, J. H.
author_sort Lambert, A.
title A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008
title_short A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008
title_full A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008
title_fullStr A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008
title_full_unstemmed A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008
title_sort a-train caliop and mls observations of early winter antarctic polar stratospheric clouds and nitric acid in 2008
publisher Copernicus Publications
publishDate 2012
url https://doi.org/10.5194/acp-12-2899-2012
https://noa.gwlb.de/receive/cop_mods_00046081
https://noa.gwlb.de/servlets/MCRFileNodeServlet/cop_derivate_00045701/acp-12-2899-2012.pdf
https://acp.copernicus.org/articles/12/2899/2012/acp-12-2899-2012.pdf
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Antarctic Peninsula
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Ellsworth Mountains
The Antarctic
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Antarctic
Antarctic Peninsula
genre_facet Antarc*
Antarctic
Antarctic Peninsula
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https://doi.org/10.5194/acp-12-2899-2012
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https://acp.copernicus.org/articles/12/2899/2012/acp-12-2899-2012.pdf
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op_doi https://doi.org/10.5194/acp-12-2899-2012
container_title Atmospheric Chemistry and Physics
container_volume 12
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spelling ftnonlinearchiv:oai:noa.gwlb.de:cop_mods_00046081 2023-05-15T13:55:42+02:00 A-train CALIOP and MLS observations of early winter Antarctic polar stratospheric clouds and nitric acid in 2008 Lambert, A. Santee, M. L. Wu, D. L. Chae, J. H. 2012-03 electronic https://doi.org/10.5194/acp-12-2899-2012 https://noa.gwlb.de/receive/cop_mods_00046081 https://noa.gwlb.de/servlets/MCRFileNodeServlet/cop_derivate_00045701/acp-12-2899-2012.pdf https://acp.copernicus.org/articles/12/2899/2012/acp-12-2899-2012.pdf eng eng Copernicus Publications Atmospheric Chemistry and Physics -- http://www.atmos-chem-phys.net/volumes_and_issues.html -- http://www.bibliothek.uni-regensburg.de/ezeit/?2069847 -- 1680-7324 https://doi.org/10.5194/acp-12-2899-2012 https://noa.gwlb.de/receive/cop_mods_00046081 https://noa.gwlb.de/servlets/MCRFileNodeServlet/cop_derivate_00045701/acp-12-2899-2012.pdf https://acp.copernicus.org/articles/12/2899/2012/acp-12-2899-2012.pdf uneingeschränkt info:eu-repo/semantics/openAccess article Verlagsveröffentlichung article Text doc-type:article 2012 ftnonlinearchiv https://doi.org/10.5194/acp-12-2899-2012 2022-02-08T22:39:15Z A-train Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP) and Microwave Limb Sounder (MLS) observations are used to investigate the development of polar stratospheric clouds (PSCs) and the gas-phase nitric acid distribution in the early 2008 Antarctic winter. Observational evidence of gravity-wave activity is provided by Atmospheric Infrared Sounder (AIRS) radiances and infrared spectroscopic detection of nitric acid trihydrate (NAT) in PSCs is obtained from the Michelson Interferometer for Passive Atmospheric Sounding (MIPAS). Goddard Earth Observing System Data Assimilation System (GEOS-5 DAS) analyses are used to derive Lagrangian trajectories and to determine temperature-time histories of air parcels. We use CALIOP backscatter and depolarization measurements to classify PSCs and the MLS measurements to determine the corresponding gas-phase HNO3 as a function of temperature. For liquid PSCs the uptake of HNO3 follows the theoretical equilibrium curve for supercooled ternary solutions (STS), but at temperatures about 1 K lower as determined from GEOS-5. In the presence of solid phase PSCs, above the ice frost-point, the HNO3 depletion occurs over a wider range of temperatures (+2 to −7 K) distributed about the NAT equilibrium curve. Rapid gas-phase HNO3 depletion is first seen by MLS from from 23–25 May 2008, consisting of a decrease in the volume mixing ratio from 14 ppbv (parts per billion by volume) to 7 ppbv on the 46–32 hPa (hectopascal) pressure levels and accompanied by a 2–3 ppbv increase by renitrification at the 68 hPa pressure level. The observed region of depleted HNO3 is substantially smaller than the region bounded by the NAT existence temperature threshold. Temperature-time histories of air parcels demonstrate that the depletion is more clearly correlated with prior exposure to temperatures a few kelvin above the frost-point. From the combined data we infer the presence of large-size NAT particles with effective radii >5–7 μm and low NAT number densities <1 × 10−3 cm−3. This denitrification event is observed close to the pole in the Antarctic vortex before synoptic temperatures first fall below the ice frost point and before the widespread occurrence of large-scale NAT PSCs. An episode of mountain wave activity detected by AIRS on 28 May 2008 led to wave-ice formation in the rapid cooling phases over the Antarctic Peninsula and Ellsworth Mountains, seeding an outbreak of NAT PSCs that were detected by CALIOP and MIPAS. The NAT clouds formed at altitudes of 18–26 km in a polar freezing belt and appear to be composed of relatively small particles with estimated effective radii of around 1 μm and high NAT number densities >0.2 cm−3. This NAT outbreak is similar to an event previously reported from MIPAS observations in mid-June 2003. Article in Journal/Newspaper Antarc* Antarctic Antarctic Peninsula Niedersächsisches Online-Archiv NOA Antarctic Antarctic Peninsula Ellsworth Mountains ENVELOPE(-85.000,-85.000,-78.750,-78.750) The Antarctic Atmospheric Chemistry and Physics 12 6 2899 2931