4.5 Article

Simulation of Arctic Thin Ice Clouds with Canadian Regional Climate Model Version 6: Verification against CloudSat-CALIPSO

Journal

ATMOSPHERE
Volume 13, Issue 2, Pages -

Publisher

MDPI
DOI: 10.3390/atmos13020187

Keywords

CRCM6; CloudSat-CALIPSO; thin ice cloud; radiative effect; cloud optical proprieties; Arctic

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Due to the lack of in situ observations, polar clouds are poorly understood compared to lower latitude clouds, but they play a crucial role in climate through thermal radiation emission. Thin Ice Clouds (TIC) dominate in cold polar regions and at high altitudes. They can be classified into two broad categories. This study investigates the capability of the CRCM6 model in simulating cold polar-night clouds over the Arctic Ocean and finds that the model performs well in simulating various cloud properties and types.
Polar clouds are, as a consequence of the paucity of in situ observations, poorly understood compared to their lower latitude analogs, yet highly climate-sensitive through thermal radiation emission. The prevalence of Thin Ice Clouds (TIC) dominates in cold Polar Regions and the Upper Troposphere Lower Stratosphere (UTLS) altitudes. They can be grouped into 2 broad categories. The first thin ice cloud type (TIC1) is made up of high concentrations of small, non-precipitating ice crystals. The second type (TIC2) is composed of relatively small concentrations of larger, precipitating ice crystals. In this study, we investigate the ability of a developmental version of the Canadian Regional Climate Model (CRCM6) in simulating cold polar-night clouds over the Arctic Ocean, a remote region that is critical to atmospheric circulation reaching out to the mid-latitudes. The results show that, relative to CloudSat-CALIPSO vertical profile products, CRCM6 simulates high-latitude and low spatial frequency variations of Ice Water Content (IWC), effective radius (re) and cooling rates reasonably well with only small to moderate wet and dry biases. The model can also simulate cloud type, location, and temporal occurrence effectively. As well, it successfully simulated higher altitude TIC1 clouds whose small size evaded CloudSat detection while being visible to CALIPSO.

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