Impacts of Synoptic‐Scale Dynamics on Clouds and Radiation in High Southern Latitudes

Author:

Barone Tyler12,Diao Minghui1ORCID,Shi Yang34ORCID,Zhao Xi35ORCID,Liu Xiaohong3ORCID,Silber Israel67ORCID

Affiliation:

1. Department of Meteorology and Climate Science San Jose State University San Jose CA USA

2. Now at Department of Atmospheric Sciences Texas A&M University College Station TX USA

3. Department of Atmospheric Sciences Texas A&M University College Station TX USA

4. Now at Department of Civil and Environmental Engineering Massachusetts Institute of Technology Cambridge MA USA

5. Now at Institute of Surface‐Earth System Science School of Earth System Science Tianjin University Tianjin China

6. Department of Meteorology and Atmospheric Science Pennsylvania State University University Park PA USA

7. Now at Atmospheric, Climate, and Earth Sciences Division Pacific Northwest National Laboratory Richland WA USA

Abstract

AbstractHigh‐latitudinal mixed‐phase clouds significantly affect Earth's radiative balance. Observations of cloud and radiative properties from two field campaigns in the Southern Ocean and Antarctica were compared with two global climate model simulations. A cyclone compositing method was used to quantify “dynamics‐cloud‐radiation” relationships relative to the extratropical cyclone centers. Observations show larger asymmetry in cloud and radiative properties between western and eastern sectors at McMurdo compared with Macquarie Island. Most observed quantities at McMurdo are higher in the western (i.e., post‐frontal) than the eastern (frontal) sector, including cloud fraction, liquid water path (LWP), net surface shortwave and longwave radiation (SW and LW), except for ice water path (IWP) being higher in the eastern sector. The two models were found to overestimate cloud fraction and LWP at Macquarie Island but underestimate them at McMurdo Station. IWP is consistently underestimated at both locations, both sectors, and in all seasons. Biases of cloud fraction, LWP, and IWP are negatively correlated with SW biases and positively correlated with LW biases. The persistent negative IWP biases may have become one of the leading causes of radiative biases over the high southern latitudes, after correcting the underestimation of supercooled liquid water in the older model versions. By examining multi‐scale factors from cloud microphysics to synoptic dynamics, this work will help increase the fidelity of climate simulations in this remote region.

Funder

U.S. Department of Energy

Office of Polar Programs

National Energy Research Scientific Computing Center

Publisher

American Geophysical Union (AGU)

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