Comparing airborne and satellite retrievals of cloud optical thickness and particle effective radius using a spectral radiance ratio technique: two case studies for cirrus and deep convective clouds
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Published:2018-04-03
Issue:7
Volume:18
Page:4439-4462
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Krisna Trismono C.ORCID, Wendisch ManfredORCID, Ehrlich AndréORCID, Jäkel Evelyn, Werner Frank, Weigel RalfORCID, Borrmann StephanORCID, Mahnke Christoph, Pöschl UlrichORCID, Andreae Meinrat O.ORCID, Voigt ChristianeORCID, Machado Luiz A. T.ORCID
Abstract
Abstract. Solar radiation reflected by cirrus and deep convective clouds (DCCs) was
measured by the Spectral Modular Airborne Radiation Measurement System
(SMART) installed on the German High Altitude and Long Range Research
Aircraft (HALO) during the Mid-Latitude Cirrus (ML-CIRRUS) and the Aerosol,
Cloud, Precipitation, and Radiation Interaction and Dynamic of Convective
Clouds System – Cloud Processes of the Main Precipitation Systems in Brazil:
A Contribution to Cloud Resolving Modelling and to the Global Precipitation
Measurement (ACRIDICON-CHUVA) campaigns. On particular flights, HALO
performed measurements closely collocated with overpasses of the Moderate
Resolution Imaging Spectroradiometer (MODIS) aboard the Aqua satellite. A
cirrus cloud located above liquid water clouds and a DCC topped by an anvil
cirrus are analyzed in this paper. Based on the nadir spectral upward
radiance measured above the two clouds, the optical thickness τ and
particle effective radius reff of the cirrus and DCC are
retrieved using a radiance ratio technique, which considers the cloud
thermodynamic phase, the vertical profile of cloud microphysical properties,
the presence of multilayer clouds, and the heterogeneity of the surface
albedo. For the cirrus case, the comparison of τ and reff
retrieved on the basis of SMART and MODIS measurements yields a normalized
mean absolute deviation of up to 1.2 % for τ and 2.1 % for
reff. For the DCC case, deviations of up to 3.6 % for τ
and 6.2 % for reff are obtained. The larger deviations in the
DCC case are mainly attributed to the fast cloud evolution and
three-dimensional (3-D) radiative effects. Measurements of spectral upward
radiance at near-infrared wavelengths are employed to investigate the
vertical profile of reff in the cirrus. The retrieved values of
reff are compared with corresponding in situ measurements using a
vertical weighting method. Compared to the MODIS observations, measurements
of SMART provide more information on the vertical distribution of particle
sizes, which allow reconstructing the profile of reff close to
the cloud top. The comparison between retrieved and in situ reff
yields a normalized mean absolute deviation, which ranges between 1.5 and
10.3 %, and a robust correlation coefficient of 0.82.
Publisher
Copernicus GmbH
Subject
Atmospheric Science
Reference96 articles.
1. Ackerman, S., Moeller, C., Strabala, K., Gerber, H., Gumley, L., Menzel, W.,
and Tsay, S.-C.: Retrieval of effective microphysical properties of clouds:
A wave cloud case study, Geophys. Res. Lett., 25, 1121–1124, 1998. a 2. Afchine, A., Rolf, C., Costa, A., Spelten, N., Riese, M., Buchholz, B.,
Ebert, V., Heller, R., Kaufmann, S., Minikin, A., Voigt, C., Zöger, M.,
Smith, J., Lawson, P., Lykov, A., Khaykin, S., and Krämer, M.: Ice particle
sampling from aircraft – influence of the probing position on the ice water
content, Atmos. Meas. Tech. Discuss., https://doi.org/10.5194/amt-2017-373,
in review, 2017. a 3. Anderson, G., Clough, S., Kneizys, F., Chetwynd, J., and Shettle, E.: AFGL
Atmospheric Constituent Profiles (0–120 km), Tech. Rep. AFGL-TR-86-0110,
AFGL (OPI), Hanscom AFB, MA 01736, 1986. a 4. Baum, B. A., Yang, P., Heymsfield, A. J., Bansemer, A., Cole, B. H., Merrelli,
A., Schmitt, C., and Wang, C.: Ice cloud single-scattering property models
with the full phase matrix at wavelengths from 0.2 to 100 µm, J. Quant.
Spectrosc. Ra., 146, 123–139,
https://doi.org/10.1016/j.jqsrt.2014.02.029, 2014. a, b, c 5. Baumgardner, D., Strapp, W., and Dye, J. E.: Evaluation of the Forward
Scattering Spectrometer Probe. Part II: Corrections for Coincidence and
Dead-Time Losses, J. Atmos. Ocean. Tech., 2, 626–632,
https://doi.org/10.1175/1520-0426(1985)002<0626:EOTFSS>2.0.CO;2, 1985. a
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