W-Band (95 GHz) Radar Attenuation in Tropical Stratiform Ice Anvils

Author:

Protat Alain1,Rauniyar Surendra1,Delanoë Julien2,Fontaine Emmanuel3,Schwarzenboeck Alfons4

Affiliation:

1. Australian Bureau of Meteorology, Melbourne, Victoria, Australia

2. Laboratoire Atmosphère, Milieux, Observations Spatiales, Université Versailles Saint-Quentin, IPSL, CNRS, Sorbonne Université, Guyancourt, France

3. Department of Atmospheric Sciences, National Taiwan University, Taipei, Taiwan

4. Laboratoire de Météorologie Physique, Université Blaise Pascal, Clermont-Ferrand, France

Abstract

AbstractAttenuation of the W-band (95 GHz) radar signal by atmospheric ice particles has long been neglected in cloud microphysics studies. In this work, 95-GHz airborne multibeam cloud radar observations in tropical stratiform ice anvils are used to estimate vertical profiles of 95-GHz attenuation. Two techniques are developed and compared, using very different assumptions. The first technique examines statistical reflectivity differences between repeated aircraft passes through the same cloud mass at different altitudes. The second technique exploits reflectivity differences between two different pathlengths through the same cloud, using the multibeam capabilities of the cloud radar. Using the first technique, the two-way attenuation coefficient produced by stratiform ice particles ranges between 1 and 1.6 dB km−1 for reflectivities between 13 and 18 dBZ, with an expected increase of attenuation with reflectivity. Using the second technique, the multibeam results confirm these high attenuation coefficient values and expand the reflectivity range, with typical attenuation coefficient values of up to 3–4 dB km−1 for reflectivities of 20 dBZ. The potential impact of attenuation on precipitating-ice-cloud microphysics retrievals is quantified using vertical profiles of the mean and the 99th percentile of ice water content derived from noncorrected and attenuation-corrected reflectivities. A large impact is found on the 99th percentile of ice water content, which increases by 0.3–0.4 g m−3 up to 11-km height. Finally, T-matrix calculations of attenuation constrained by measured particle size distributions, ice crystal mass–size, and projected area–size relationships are found to largely underestimate cloud radar attenuation estimates.

Funder

Federal Aviation Administration

EU FP7

European Aviation Safety Agency

Publisher

American Meteorological Society

Subject

Atmospheric Science,Ocean Engineering

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