The Spiderweb Structure of Stratocumulus Clouds

Stratocumulus clouds have a distinctive structure composed of a combination of lumpy cellular structures and thin elongated regions, resembling canyons or slits. The elongated slits are referred to as “spiderweb” structure to emphasize their interconnected nature. Using very high resolution large-ed...

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Published in:Atmosphere
Main Authors: Georgios Matheou, Anthony B. Davis, João Teixeira
Format: Article
Language:English
Published: MDPI AG 2020-07-01
Subjects:
Online Access:https://www.mdpi.com/2073-4433/11/7/730
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author Georgios Matheou
Anthony B. Davis
João Teixeira
author_facet Georgios Matheou
Anthony B. Davis
João Teixeira
author_sort Georgios Matheou
collection DOAJ
container_title Atmosphere
description Stratocumulus clouds have a distinctive structure composed of a combination of lumpy cellular structures and thin elongated regions, resembling canyons or slits. The elongated slits are referred to as “spiderweb” structure to emphasize their interconnected nature. Using very high resolution large-eddy simulations (LES), it is shown that the spiderweb structure is generated by cloud-top evaporative cooling. Analysis of liquid water path (LWP) and cloud liquid water content shows that cloud-top evaporative cooling generates relatively shallow slits near the cloud top. Most of liquid water mass is concentrated near the cloud top, thus cloud-top slits of clear air have a large impact on the entire-column LWP. When evaporative cooling is suppressed in the LES, LWP exhibits cellular lumpy structure without the elongated low-LWP regions. Even though the spiderweb signature on the LWP distribution is negligible, the cloud-top evaporative cooling process significantly affects integral boundary layer quantities, such as the vertically integrated turbulent kinetic energy, mean liquid water path, and entrainment rate. In a pair of simulations driven only by cloud-top radiative cooling, evaporative cooling nearly doubles the entrainment rate.
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spelling doaj-art-9a2dffa3fd5844b8a0ff289cb6f0ec132025-08-19T22:47:34ZengMDPI AGAtmosphere2073-44332020-07-0111773010.3390/atmos11070730The Spiderweb Structure of Stratocumulus CloudsGeorgios Matheou0Anthony B. Davis1João Teixeira2Department of Mechanical Engineering, University of Connecticut, Storrs, CT 06269, USAJet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91109, USAJet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91109, USAStratocumulus clouds have a distinctive structure composed of a combination of lumpy cellular structures and thin elongated regions, resembling canyons or slits. The elongated slits are referred to as “spiderweb” structure to emphasize their interconnected nature. Using very high resolution large-eddy simulations (LES), it is shown that the spiderweb structure is generated by cloud-top evaporative cooling. Analysis of liquid water path (LWP) and cloud liquid water content shows that cloud-top evaporative cooling generates relatively shallow slits near the cloud top. Most of liquid water mass is concentrated near the cloud top, thus cloud-top slits of clear air have a large impact on the entire-column LWP. When evaporative cooling is suppressed in the LES, LWP exhibits cellular lumpy structure without the elongated low-LWP regions. Even though the spiderweb signature on the LWP distribution is negligible, the cloud-top evaporative cooling process significantly affects integral boundary layer quantities, such as the vertically integrated turbulent kinetic energy, mean liquid water path, and entrainment rate. In a pair of simulations driven only by cloud-top radiative cooling, evaporative cooling nearly doubles the entrainment rate.https://www.mdpi.com/2073-4433/11/7/730stratocumulus cloudscloud holescloud-top evaporative coolingbuoyancy reversallarge-eddy simulationAirMSPI
spellingShingle Georgios Matheou
Anthony B. Davis
João Teixeira
The Spiderweb Structure of Stratocumulus Clouds
stratocumulus clouds
cloud holes
cloud-top evaporative cooling
buoyancy reversal
large-eddy simulation
AirMSPI
title The Spiderweb Structure of Stratocumulus Clouds
title_full The Spiderweb Structure of Stratocumulus Clouds
title_fullStr The Spiderweb Structure of Stratocumulus Clouds
title_full_unstemmed The Spiderweb Structure of Stratocumulus Clouds
title_short The Spiderweb Structure of Stratocumulus Clouds
title_sort spiderweb structure of stratocumulus clouds
topic stratocumulus clouds
cloud holes
cloud-top evaporative cooling
buoyancy reversal
large-eddy simulation
AirMSPI
url https://www.mdpi.com/2073-4433/11/7/730
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