Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Stratospheric cirrus clouds related to deep convection over North America observed by satellite measurements

View through CrossRef
<p>Cirrus clouds in the stratosphere (SCCs) regulate the water vapor budget in the stratosphere, impact the stratosphere and tropopshere exchange, and affect the surface energy balance. But the knowledge of its occurrence and formation mechanism is limited, especially in middle and high latitudes. In this study, we aim to assess the occurrence frequencies of SCC over North America based on The Cloud-Aerosol Lidar and Infrared Pathfinder Satellite Observations (CALIPSO) instrument during the years 2006 to 2018. Possible driving forces such as deep convection are assessed based on Atmospheric Infrared Sounder (AIRS) observations during the same time. </p><p>Results show that at nighttime, SCCs are most frequently observed during the thunderstorm season over the Great Plains from May to August (MJJA) with maximum occurrence frequency of 6.2%. During the months from November to February (NDJF), the highest SCCs occurrence frequencies are 5.5% over the North-Eastern Pacific, western Canada and 4.4% over the western North Atlantic. Occurrence frequencies of deep convection and strong storm systems from AIRS show similar hotspots like the SCCs, with highest occurrence frequencies being observed over the Great Plains in MJJA (4.4%) and over the North-Eastern Pacific, western Canada and the western North Atlantic in NDJF (~2.5%). Both, seasonal patterns and daily time series of SCCs and deep convection show a high degree of spatial and temporal correlation. As further analysis indicates that the maximum fraction of SCCs generated by deep convection is 74% over the Great Plains in MJJA and about 50% over the western North Atlantic, the North-Eastern Pacific and western Canada in NDJF, we conclude that, locally and regionally, deep convection is a leading factor for the formation of SCCs over North America. Other studies stressed the relevance of isentropic transport, double tropopause events, or gravity waves for the formation of SCCs. </p><p>In this study, we also analyzed the impact of gravity waves as a secondary formation mechanism for SCCs, as the Great Plains is a well-known hotspot for stratospheric gravity waves. In case of SCCs that are not directly linked to deep convection, we found that stratospheric gravity wave observations correlate in as much as 30% of the cases over the Great Plains in MJJA, about 50% over the North-Eastern Pacific, western Canada and maximally 90% over eastern Canada and the north-west Atlantic in NDJF. </p><p>Our results provide better understanding of the physical processes and climate variability related to SCCs and will be of interest for modelers as SCC sources such as deep convection and gravity waves are small-scale processes that are difficult to represent in global general circulation models. </p>
Title: Stratospheric cirrus clouds related to deep convection over North America observed by satellite measurements
Description:
<p>Cirrus clouds in the stratosphere (SCCs) regulate the water vapor budget in the stratosphere, impact the stratosphere and tropopshere exchange, and affect the surface energy balance.
But the knowledge of its occurrence and formation mechanism is limited, especially in middle and high latitudes.
In this study, we aim to assess the occurrence frequencies of SCC over North America based on The Cloud-Aerosol Lidar and Infrared Pathfinder Satellite Observations (CALIPSO) instrument during the years 2006 to 2018.
Possible driving forces such as deep convection are assessed based on Atmospheric Infrared Sounder (AIRS) observations during the same time.
 </p><p>Results show that at nighttime, SCCs are most frequently observed during the thunderstorm season over the Great Plains from May to August (MJJA) with maximum occurrence frequency of 6.
2%.
During the months from November to February (NDJF), the highest SCCs occurrence frequencies are 5.
5% over the North-Eastern Pacific, western Canada and 4.
4% over the western North Atlantic.
Occurrence frequencies of deep convection and strong storm systems from AIRS show similar hotspots like the SCCs, with highest occurrence frequencies being observed over the Great Plains in MJJA (4.
4%) and over the North-Eastern Pacific, western Canada and the western North Atlantic in NDJF (~2.
5%).
Both, seasonal patterns and daily time series of SCCs and deep convection show a high degree of spatial and temporal correlation.
As further analysis indicates that the maximum fraction of SCCs generated by deep convection is 74% over the Great Plains in MJJA and about 50% over the western North Atlantic, the North-Eastern Pacific and western Canada in NDJF, we conclude that, locally and regionally, deep convection is a leading factor for the formation of SCCs over North America.
Other studies stressed the relevance of isentropic transport, double tropopause events, or gravity waves for the formation of SCCs.
 </p><p>In this study, we also analyzed the impact of gravity waves as a secondary formation mechanism for SCCs, as the Great Plains is a well-known hotspot for stratospheric gravity waves.
In case of SCCs that are not directly linked to deep convection, we found that stratospheric gravity wave observations correlate in as much as 30% of the cases over the Great Plains in MJJA, about 50% over the North-Eastern Pacific, western Canada and maximally 90% over eastern Canada and the north-west Atlantic in NDJF.
 </p><p>Our results provide better understanding of the physical processes and climate variability related to SCCs and will be of interest for modelers as SCC sources such as deep convection and gravity waves are small-scale processes that are difficult to represent in global general circulation models.
 </p>.

Related Results

Satellite observations of cirrus clouds in the lower stratosphere
Satellite observations of cirrus clouds in the lower stratosphere
<div> <p>While cirrus cloud are frequently observed by ground-based lidars in the lowermost stratosphere, evidence from satellite observations is less c...
Midlatitude cirrus cloud investigations from ground-based lidar and ERA-5 re-analysis
Midlatitude cirrus cloud investigations from ground-based lidar and ERA-5 re-analysis
Cirrus as high-altitude clouds are formed at the highest layers of the troposphere, usually at the altitude range 5,000 – 14,000m. Cirrus clouds are composed mainly by as...
Subvisual Cirrus
Subvisual Cirrus
Starting during World War II, pilots flying high over the tropics reported “a thin layer of cirrus 500ft above us”. Yet as they ascended, they still observed more thin cirrus above...
Global analysis of cirrus origins using satellite observations and Lagrangian trajectories
Global analysis of cirrus origins using satellite observations and Lagrangian trajectories
In addition to their formation mechanisms, the origin of cirrus clouds (liquid-origin or in situ) can significantly influence their microphysical and radiative properties. Liquid-o...
Long-lived contrails in cirrus clouds underestimated with uncertain climate impact
Long-lived contrails in cirrus clouds underestimated with uncertain climate impact
Contrail-cirrus is considered the most important component of aviation-induced climate impact. However, a reliable assessment requires a better understanding of the environment in ...
The spatial heterogeneity and inhomogeneity of cirrus microphysical properties evaluated globally using in situ measurements
The spatial heterogeneity and inhomogeneity of cirrus microphysical properties evaluated globally using in situ measurements
Cirrus clouds having a high degree of spatially heterogeneous/inhomogeneous cloud properties have been shown to correspond with increased wave activity (e.g., Podglajen et al., 201...
Volcanic impact on cirrus clouds
Volcanic impact on cirrus clouds
<p>Cirrus clouds have a net warming effect on climate due to their high altitude and low optical thickness. Small changes in their properties may however shift this t...
Cirrus: A Modern Perspective
Cirrus: A Modern Perspective
It is now understood that the cirrus clouds inhabiting the upper troposphere play a significant role in regulating the radiation balance of the earth-atmosphere system and so must ...

Back to Top