Cloud chamber experiments on the origin of ice crystal complexity in cirrus clouds

This study reports on the origin of small-scale ice crystal complexity and its influence on the angular light scattering properties of cirrus clouds. Cloud simulation experiments were conducted at the AIDA (Aerosol Interactions and Dynamics in the Atmosphere) cloud chamber of the Karlsruhe Institute of Technology (KIT). A new experimental procedure was applied to grow and sublimate ice particles at defined super- and subsaturated ice conditions and for temperatures in the -40 to -60°C range. The experiments were performed for ice clouds generated via homogeneous and heterogeneous initial nucleation. Small-scale ice crystal complexity was deduced from measurements of spatially resolved single particle light scattering patterns by the latest version of the Small Ice Detector (SID-3). It was found that a high crystal complexity dominates the microphysics of the simulated clouds and the degree of this complexity is dependent on the available water vapor during the crystal growth. Indications were found that the small-scale crystal complexity is influenced by unfrozen H₂SO₄ / H₂O residuals in the case of homogeneous initial ice nucleation. Angular light scattering functions of the simulated ice clouds were measured by the two currently available airborne polar nephelometers: the polar nephelometer (PN) probe of Laboratoire de Métérologie et Physique (LaMP) and the Particle Habit Imaging and Polar Scattering (PHIPS-HALO) probe of KIT. The measured scattering functions are featureless and flat in the side and backward scattering directions. It was found that these functions have a rather low sensitivity to the small-scale crystal complexity for ice clouds that were grown under typical atmospheric conditions. These results have implications for the microphysical properties of cirrus clouds and for the radiative transfer through these clouds.

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Copyright 2016 Authors. This work is distributed under the Creative Commons Attribution 3.0 License.


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Author Schnaiter, Martin
Järvinen, Emma
Vochezer, Paul
Abdelmonem, Ahmed
Wagner, Robert
Jourdan, Olivier
Mioche, Guillaume
Shcherbakov, Valery
Schmitt, Carl
Tricoli, Ugo
Ulanowski, Zbigniew
Heymsfield, Andrew
Publisher UCAR/NCAR - Library
Publication Date 2016-04-25T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2023-08-18T19:01:57.172218
Metadata Record Identifier edu.ucar.opensky::articles:18511
Metadata Language eng; USA
Suggested Citation Schnaiter, Martin, Järvinen, Emma, Vochezer, Paul, Abdelmonem, Ahmed, Wagner, Robert, Jourdan, Olivier, Mioche, Guillaume, Shcherbakov, Valery, Schmitt, Carl, Tricoli, Ugo, Ulanowski, Zbigniew, Heymsfield, Andrew. (2016). Cloud chamber experiments on the origin of ice crystal complexity in cirrus clouds. UCAR/NCAR - Library. http://n2t.net/ark:/85065/d73j3fkq. Accessed 21 March 2025.

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