Ice cloud microphysical trends observed by the Atmospheric Infrared Sounder

We use the Atmospheric Infrared Sounder (AIRS) version 6 ice cloud property and thermodynamic phase retrievals to quantify variability and 14-year trends in ice cloud frequency, ice cloud top temperature (T-ci), ice optical thickness (tau(i)) and ice effective radius (r(ei)). The trends in ice cloud properties are shown to be independent of trends in information content and chi(2). Statistically significant decreases in ice frequency, tau(i), and ice water path (IWP) are found in the SH and NH extratropics, but trends are of much smaller magnitude and statistically insignificant in the tropics. However, statistically significant increases in r(ei) are found in all three latitude bands. Perturbation experiments consistent with estimates of AIRS radiometric stability fall significantly short of explaining the observed trends in ice properties, averaging kernels, and chi(2) trends. Values of r(ei) are larger at the tops of opaque clouds and exhibit dependence on surface wind speed, column water vapour (CWV) and surface temperature (T-sfc) with changes up to 4-5 mu m but are only 1.9% of all ice clouds. Non-opaque clouds exhibit a much smaller change in r(ei) with respect to CWV and T-sfc. Comparisons between DARDAR and AIRS suggest that r(ei) is smallest for single-layer cirrus, larger for cirrus above weak convection, and largest for cirrus above strong convection at the same cloud top temperature. This behaviour is consistent with enhanced particle growth from radiative cooling above convection or large particle lofting from strong convection.

To Access Resource:

Questions? Email Resource Support Contact:

  • opensky@ucar.edu
    UCAR/NCAR - Library

Resource Type publication
Temporal Range Begin N/A
Temporal Range End N/A
Temporal Resolution N/A
Bounding Box North Lat N/A
Bounding Box South Lat N/A
Bounding Box West Long N/A
Bounding Box East Long N/A
Spatial Representation N/A
Spatial Resolution N/A
Related Links

Related Dataset #1 : Aqua AIRS L2 standard retrieval product using AIRS IR and AMSU, without-HSB V6

Additional Information N/A
Resource Format PDF
Standardized Resource Format PDF
Asset Size N/A
Legal Constraints

Copyright 2018 Author(s). This work is licensed under a Creative Commons Attribution 4.0 International license.


Access Constraints None
Software Implementation Language N/A

Resource Support Name N/A
Resource Support Email opensky@ucar.edu
Resource Support Organization UCAR/NCAR - Library
Distributor N/A
Metadata Contact Name N/A
Metadata Contact Email opensky@ucar.edu
Metadata Contact Organization UCAR/NCAR - Library

Author Kahn, Brian H.
Takahashi, Hanii
Stephens, Graeme L.
Yue, Qing
Delanoë, Julien
Manipon, Gerald
Manning, Evan M.
Heymsfield, Andrew J.
Publisher UCAR/NCAR - Library
Publication Date 2018-07-26T00:00:00
Digital Object Identifier (DOI) Not Assigned
Alternate Identifier N/A
Resource Version N/A
Topic Category geoscientificInformation
Progress N/A
Metadata Date 2023-08-18T19:22:21.632011
Metadata Record Identifier edu.ucar.opensky::articles:21854
Metadata Language eng; USA
Suggested Citation Kahn, Brian H., Takahashi, Hanii, Stephens, Graeme L., Yue, Qing, Delanoë, Julien, Manipon, Gerald, Manning, Evan M., Heymsfield, Andrew J.. (2018). Ice cloud microphysical trends observed by the Atmospheric Infrared Sounder. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d7n019bm. Accessed 29 June 2025.

Harvest Source