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Chemical, microphysical, and optical properties of polar stratospheric clouds

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Schreiner,  J.
Division Prof. Dr. Manfred Lindner, MPI for Nuclear Physics, Max Planck Society;

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Voigt,  C.
Prof. Konrad Mauersberger, Emeriti, MPI for Nuclear Physics, Max Planck Society;

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Weisser,  C.
Prof. Konrad Mauersberger, Emeriti, MPI for Nuclear Physics, Max Planck Society;

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Kohlmann,  A.
Prof. Konrad Mauersberger, Emeriti, MPI for Nuclear Physics, Max Planck Society;

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Mauersberger,  K.
Prof. Konrad Mauersberger, Emeriti, MPI for Nuclear Physics, Max Planck Society;

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Citation

Schreiner, J., Voigt, C., Weisser, C., Kohlmann, A., Mauersberger, K., Deshler, T., et al. (2002). Chemical, microphysical, and optical properties of polar stratospheric clouds. Journal of Geophysical Research-Atmospheres, 108(D5): 8313, pp. 8313-8313.


Cite as: https://hdl.handle.net/11858/00-001M-0000-0011-8250-B
Abstract
[1] A balloonborne gondola for a comprehensive study of polar stratospheric clouds (PSCs) was launched on 25 January 2000 near Kiruna/Sweden. Besides an aerosol composition mass spectrometer, the gondola carried optical particle counters, two backscatter sondes, a hygrometer, and several temperature and pressure sensors. A mountain wave induced PSC was sampled between 20 and 23 km altitude. Strongly correlated PSC particle properties were detected with the different instruments. A large variability of particle types was measured in numerous PSC layers, and PSC development was followed for about two hours. Liquid ternary PSC layers were found at temperatures near the ice frost point. A large fraction of the sampled cloud layers consisted of nitric acid trihydrate (NAT) particles with a molar ratio H2O: HNO3 close to 3 at temperatures near and below the equilibrium temperature T-NAT. The median radius of the NAT particle size distribution was between 0.5 and 0.75 mum at concentrations around 0.5 cm(-3). Below the NAT layers and above T-NAT, thin cloud layers containing a few large particles with radii up to 3.5 mum coexisted with smaller solid or liquid particles. The molar ratio in this region was found to be close to two.