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

Influence of Stratosphere Polar Vortex Variability on the Mesosphere, Thermosphere, and Ionosphere

View through CrossRef
The Whole Atmosphere Community Climate Model with thermosphere-ionosphere eXtension (WACCM-X) is used to investigate the influence of stratosphere polar vortex variability on the mesosphere, thermosphere, and ionosphere during Northern Hemisphere winter. Based on 40 simulated Northern Hemisphere winters, the mesosphere and lower thermosphere (MLT) residual circulation is found to depend on whether the stratosphere polar vortex is strong or weak. In particular, during weak stratosphere polar vortex time periods, the MLT circulation anomalies are characterized by clockwise and anti-clockwise flow in the Northern and Southern Hemispheres, respectively. Opposite, though weaker, anomalies are found to occur during time periods when the stratosphere polar vortex is strong. The MLT circulation anomalies influence the composition of the lower thermosphere, leading to ±5% changes in the thermosphere column integrated atomic oxygen to molecular nitrogen ratio (O/N2). Large differences between strong and weak stratosphere polar vortex events are also found to occur in the semidiurnal migrating tide (SW2) in the MLT, which leads to ±15-20% differences in the SW2 component of the ionosphere total electron content (TEC) at low latitudes. The WACCM-X simulation results indicate that variability in the stratosphere polar vortex can explain ~30% and ~18% of the quiet time variability in thermosphere O/N2 and the SW2 component of TEC during Northern Hemisphere winter, respectively.
Title: Influence of Stratosphere Polar Vortex Variability on the Mesosphere, Thermosphere, and Ionosphere
Description:
The Whole Atmosphere Community Climate Model with thermosphere-ionosphere eXtension (WACCM-X) is used to investigate the influence of stratosphere polar vortex variability on the mesosphere, thermosphere, and ionosphere during Northern Hemisphere winter.
Based on 40 simulated Northern Hemisphere winters, the mesosphere and lower thermosphere (MLT) residual circulation is found to depend on whether the stratosphere polar vortex is strong or weak.
In particular, during weak stratosphere polar vortex time periods, the MLT circulation anomalies are characterized by clockwise and anti-clockwise flow in the Northern and Southern Hemispheres, respectively.
Opposite, though weaker, anomalies are found to occur during time periods when the stratosphere polar vortex is strong.
The MLT circulation anomalies influence the composition of the lower thermosphere, leading to ±5% changes in the thermosphere column integrated atomic oxygen to molecular nitrogen ratio (O/N2).
Large differences between strong and weak stratosphere polar vortex events are also found to occur in the semidiurnal migrating tide (SW2) in the MLT, which leads to ±15-20% differences in the SW2 component of the ionosphere total electron content (TEC) at low latitudes.
The WACCM-X simulation results indicate that variability in the stratosphere polar vortex can explain ~30% and ~18% of the quiet time variability in thermosphere O/N2 and the SW2 component of TEC during Northern Hemisphere winter, respectively.

Related Results

Stability and dynamics of geophysical neutral vortices
Stability and dynamics of geophysical neutral vortices
(English) Mesoscale and submesoscale vortical structures are ubiquitous in the ocean and atmosphere. Most of these vortices are long-lived with a lifetime of several months. They o...
Investigation of vortex in pump sump by V3V measurements
Investigation of vortex in pump sump by V3V measurements
Abstract The aims, scope and conclusions of the paper must be in a self-contained abstract of a single paragraph with 60-120 words. The abstract must be informative ...
Arctic Stratosphere Dynamical Processes in the Winter 2021–2022
Arctic Stratosphere Dynamical Processes in the Winter 2021–2022
The Arctic stratosphere winter season of 2021–2022 was characterized by a stable, cold stratospheric polar vortex with a volume of polar stratospheric clouds (PSC) close to the max...
Lidar Observations of Thermosphere-Ionosphere Na (TINa) Layers at two nearby stations in North China
Lidar Observations of Thermosphere-Ionosphere Na (TINa) Layers at two nearby stations in North China
The metal layers in the Earth’s upper atmosphere have received growing attention in recent years because of the discovery of the Thermosphere-Ionosphere metal (TIMt) Laye...
Planetary Wave Modulation of Gravity Waves Over the Andes in 2016
Planetary Wave Modulation of Gravity Waves Over the Andes in 2016
AbstractThe Andes account for the largest source of orographic gravity waves (GWs) in the middle atmosphere. This results from persistent, strong zonal winds at the surface encount...
Stratospheric water vapour as tracer for vortex filamentation in the Arctic winter 2002/2003
Stratospheric water vapour as tracer for vortex filamentation in the Arctic winter 2002/2003
Abstract. During winter 2002/2003, three balloon-borne frost point hygrometers measured high-resolution profiles of stratospheric water vapour above Ny-Ålesund, Spitsbergen. All me...
Polar vortex evolution during SSWs influenced by energetic electron precipitation
Polar vortex evolution during SSWs influenced by energetic electron precipitation
Many studies have shown that energetic electron precipitation (EEP) depletes ozone in the mesosphere and upper stratosphere, inducing radiative and dynamical changes in the wintert...
Cooling of the mesosphere and lower thermosphere due to doubling of CO2
Cooling of the mesosphere and lower thermosphere due to doubling of CO2
Abstract. A new parameterization of infrared radiative transfer in the 15-μm CO2 band has been incorporated into the Spectral mesosphere/lower thermosphere model (SMLTM). The param...

Back to Top